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Automated fine structure image analysis method for discrimination of diabetic retinopathy stage using conjunctival microvasculature images

机译:结膜微血管图像自动鉴别糖尿病视网膜病变阶段的精细结构图像分析方法

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摘要

The conjunctiva is a densely vascularized mucus membrane covering the sclera of the eye with a unique advantage of accessibility for direct visualization and non-invasive imaging. The purpose of this study is to apply an automated quantitative method for discrimination of different stages of diabetic retinopathy (DR) using conjunctival microvasculature images. Fine structural analysis of conjunctival microvasculature images was performed by ordinary least square regression and Fisher linear discriminant analysis. Conjunctival images between groups of non-diabetic and diabetic subjects at different stages of DR were discriminated. The automated method’s discriminate rates were higher than those determined by human observers. The method allowed sensitive and rapid discrimination by assessment of conjunctival microvasculature images and can be potentially useful for DR screening and monitoring.
机译:结膜是覆盖眼睛巩膜的密集血管化粘液膜,具有可直接观察和无创成像的独特优势。这项研究的目的是应用一种自动定量方法,使用结膜微脉管系统图像来区分糖尿病视网膜病变(DR)的不同阶段。结膜微脉管系统图像的精细结构分析通过普通最小二乘回归和Fisher线性判别分析进行。区分处于不同DR阶段的非糖尿病和糖尿病受试者组之间的结膜图像。自动化方法的辨别率高于人工观察者确定的辨别率。该方法可通过评估结膜微脉管系统图像实现灵敏,快速的区分,并且可能对DR筛查和监测潜在有用。

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