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Automatic Diagnosis of Diabetic Retinopathy using Machine Learning: A Review

机译:机器学习自动诊断糖尿病视网膜病变:综述

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Diabetic Retinopathy is a popular cause of diabetes, causing vision-impacting lesions of the retina. Blindness may be avoided by early detection. The ophthalmologist’s manual approach of diagnosing diabetic retinopathy is expensive and time consuming. At the same time, unlike computer assisted diagnostic systems, it may cause misdiagnosis. Deep learning has recently become one of the most effective approaches that has obtained better efficiency in the analysis and classification of medical images. In medical image analysis, convolutional neural networks are more commonly used as a deep learning approach and they are extremely effective. This paper assessed and addressed the new state-of-the-art Diabetic Retinopathy color fundus image classification and detection methodologies using deep learning and machine learning techniques. Additionally, various challenging issues that need further study are also discussed.
机译:糖尿病视网膜病是一种糖尿病的流行原因,导致视网膜视觉撞击病变。早期检测可能避免盲目。眼科医生诊断糖尿病视网膜病变的手工方法昂贵且耗时。与此同时,与计算机辅助诊断系统不同,它可能导致误诊。深度学习最近成为在医学图像分析和分类中获得更好效率的最有效的方法之一。在医学图像分析中,卷积神经网络更常用为深入学习方法,它们非常有效。本文评估并解决了新的最先进的糖尿病视网膜病彩色眼底图像分类和检测方法,使用深度学习和机器学习技术。此外,还讨论了需要进一步研究的各种具有挑战性的问题。

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