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Automatic Diabetic Retinopathy Classification

机译:糖尿病性视网膜病变自动分类

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摘要

Diabetic retinopathy (DR) is a disease in which the retina is damaged due to augmentation in the blood pressure of small vessels. DR is the major cause of blindness for diabetics. It has been shown that early diagnosis can play a major role in prevention of visual loss and blindness. This work proposes a computer based approach for the detection of DR in back-of-the-eye images based on the use of convolutional neural networks (CNNs). Our CNN uses deep architectures to classify Back-of-the-eye Retinal Photographs (BRP) in 5 stages of DR. Our method combines several preprocessing images of BRP to obtain an ACA score of 50.5%. Furthermore, we explore subproblems by training a larger CNN of our main classification task.
机译:糖尿病性视网膜病(DR)是一种由于小血管血压升高而视网膜受损的疾病。 DR是糖尿病患者失明的主要原因。已经表明,早期诊断可以在预防视力丧失和失明中起主要作用。这项工作提出了一种基于计算机的方法,用于基于卷积神经网络(CNN)的眼后图像中DR的检测。我们的CNN使用深层架构将DR的5个阶段分类为眼后视网膜照片(BRP)。我们的方法结合了BRP的几个预处理图像,获得了50.5%的ACA分数。此外,我们通过训练主要分类任务的更大的CNN来探索子问题。

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