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首页> 外文期刊>Journal of medical engineering & technology >A review on computer-aided recent developments for automatic detection of diabetic retinopathy
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A review on computer-aided recent developments for automatic detection of diabetic retinopathy

机译:关于自动检测糖尿病视网膜病变的电脑辅助发展的综述

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摘要

Diabetic retinopathy is a serious microvascular disorder that might result in loss of vision and blindness. It seriously damages the retinal blood vessels and reduces the light-sensitive inner layer of the eye. Due to the manual inspection of retinal fundus images on diabetic retinopathy to detect the morphological abnormalities in Microaneurysms (MAs), Exudates (EXs), Haemorrhages (HMs), and Inter retinal microvascular abnormalities (IRMA) is very difficult and time consuming process. In order to avoid this, the regular follow-up screening process, and early automatic Diabetic Retinopathy detection are necessary. This paper discusses various methods of analysing automatic retinopathy detection and classification of different grading based on the severity levels. In addition, retinal blood vessel detection techniques are also discussed for the ultimate detection and diagnostic procedure of proliferative diabetic retinopathy. Furthermore, the paper elaborately discussed the systematic review accessed by authors on various publicly available databases collected from different medical sources. In the survey, meta-analysis of several methods for diabetic feature extraction, segmentation and various types of classifiers have been used to evaluate the system performance metrics for the diagnosis of DR. This survey will be helpful for the technical persons and researchers who want to focus on enhancing the diagnosis of a system that would be more powerful in real life.
机译:糖尿病视网膜病变是一种严重的微血管疾病,可能导致视力和失明的丧失。它严重损害视网膜血管并减少了眼睛的光敏内层。由于对糖尿病视网膜病变的视网膜眼底图像进行了手动检查,以检测微瘤(MAS)的形态异常,渗出物(EXS),出血(HMS)和视网膜微血管异常(IRMA)是非常困难和耗时的过程。为了避免这种情况,需要定期进行后续筛选过程和早期的自动糖尿病视网膜病变检测。本文讨论了根据严重程度分析不同分级的自动视网膜病变检测和分类的各种方法。此外,还讨论了视网膜血管检测技术,用于增殖糖尿病视网膜病变的最终检测和诊断程序。此外,本文精心讨论了作者在不同医疗来源收集的各种公开数据库上访问的系统审查。在调查中,已经使用了几种糖尿病特征提取方法的META分析,分割和各种类型分类器来评估博士诊断的系统性能度量。本调查将有助于专注于提高现实生活中更强大的系统诊断的技术人员和研究人员。

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