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A Review of Image Processing and Deep Learning Based Methods for Automated Analysis of Digital Retinal Fundus Images

机译:基于图像处理和深度学习的数字视网膜底图像自动分析方法综述

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摘要

Retinal fundus imaging is a medical procedure used by medical professionals in the discovery and tracking of various retinal abnormalities. Sometimes the analysis of retinal fundus images can be slow and difficult when performed by medical staff, and in response to this many automated, image-processing based methods for the analysis of these images exist. In recent years, deep learning methods have become increasingly popular in machine learning applications, so it is no surprise that they are also being used in the image processing based analysis of retinal fundus images. In this paper we discuss recently proposed methods that use deep learning techniques in the image processing based analysis of digital retinal fundus images. Special attention is given to the analysis of retinal fundus image datasets and various techniques employed to the images from these datasets in order to make them suitable for deep learning based applications.
机译:眼底成像是医学专业人员在发现和跟踪各种视网膜异常中使用的一种医疗程序。有时,当由医务人员进行时,对眼底图像的分析可能会很缓慢且困难,并且响应于此,存在许多基于自动图像处理的图像分析方法。近年来,深度学习方法已在机器学习应用程序中变得越来越流行,因此将其用于基于视网膜眼底图像的图像处理分析也就不足为奇了。在本文中,我们讨论了最近提出的在基于数字视网膜眼底图像分析的图像处理中使用深度学习技术的方法。特别注意视网膜眼底图像数据集的分析以及从这些数据集中获取图像的各种技术,以使其适合基于深度学习的应用。

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