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Algorithms for the automated detection of diabetic retinopathy using digital fundus images: a review.

机译:使用数字眼底图像自动检测糖尿病性视网膜病变的算法:综述。

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摘要

Diabetes is a chronic end organ disease that occurs when the pancreas does not secrete enough insulin or the body is unable to process it properly. Over time, diabetes affects the circulatory system, including that of the retina. Diabetic retinopathy is a medical condition where the retina is damaged because fluid leaks from blood vessels into the retina. Ophthalmologists recognize diabetic retinopathy based on features, such as blood vessel area, exudes, hemorrhages, microaneurysms and texture. In this paper we review algorithms used for the extraction of these features from digital fundus images. Furthermore, we discuss systems that use these features to classify individual fundus images. The classifications efficiency of different DR systems is discussed. Most of the reported systems are highly optimized with respect to the analyzed fundus images, therefore a generalization of individual results is difficult. However, this review shows that the classification results improved has improved recently, and it is getting closer to the classification capabilities of human ophthalmologists.
机译:糖尿病是一种慢性终末器官疾病,发生在胰腺分泌的胰岛素不足或人体无法正常处理胰岛素时。随着时间的流逝,糖尿病会影响循环系统,包括视网膜的循环系统。糖尿病性视网膜病是由于液体从血管泄漏到视网膜而导致视网膜受损的医学疾病。眼科医生基于诸如血管面积,渗出,出血,微动脉瘤和质地等特征来识别糖尿病性视网膜病。在本文中,我们回顾了用于从数字眼底图像中提取这些特征的算法。此外,我们讨论了使用这些功能对各个眼底图像进行分类的系统。讨论了不同灾难恢复系统的分类效率。关于所分析的眼底图像,大多数报告的系统都进行了高度优化,因此很难对单个结果进行概括。然而,该综述表明,改进的分类结果最近有所改善,并且它越来越接近于人类眼科医生的分类能力。

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