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Classification and Localisation of Diabetic-Related Eye Disease

机译:糖尿病相关眼病的分类与定位

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Retinal exudates are a characteristic feature of many retinal diseases such as Diabetic Retinopathy. We address the development of a method to quantitatively diagnose these random yellow patches in colour retinal images automatically. After a colour normalisation and contrast enhancement preprocessing step, the colour retinal image is segmented using Fuzzy C-Means clustering. We then classify the segmented regions into two disjoint classes, exudates and non-exudates, comparing the performance of various classifiers. We also locate the optic disk both to remove it as a candidate region and to measure its boundaries accurately since it is a significant landmark feature for ophthalmologists. Three different approaches are reported for optic disk localisation based on template matching, least squares are estimation and snakes. The system could achieve an overall diagnostic accuracy of 90.1% for identification of the exudate pathologies and 90.7% for optic disk localisation.
机译:视网膜渗出物是许多视网膜疾病如糖尿病视网膜病变的特征。我们解决了一种方法来自动地定量地诊断这些随机黄色斑块的方法。在颜色归一化和对比度增强预处理步骤之后,使用模糊C-Means聚类分割彩色视网膜图像。然后,我们将分段区域分为两个不相交的类,渗出物和非渗出物,比较各种分类器的性能。我们还定位光盘既可以将其移除为候选区域,并准确地测量其边界,因为它是眼科医生的重要地标功能。报告了基于模板匹配的光盘定位的三种不同方法,最小二乘是估计和蛇。该系统可以实现90.1%的整体诊断准确性,以识别渗出物病理和光盘定位的90.7%。

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