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Fine Microaneurysm Detection from Non-dilated Diabetic Retinopathy Retinal Images Using a Hybrid Approach

机译:使用混合方法从非扩张糖尿病视网膜病视网膜图像检测细胞微生物瘤检测

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Microaneurysms are the first clinical sign of diabetic retinopathy, a major cause of vision loss in diabetic patients. Early microaneurysm detection can help reduce the incidence of blindness. Automatic detection of microaneurysms is still an open problem due to their tiny sizes, low contrast and also similarity with blood vessels. It is particularly very difficult to detect fine microaneurysms, especially from non-dilated pupils and that is the goal of this paper. The process in this paper has two main segmentation steps. They are coarse segmentation using mathematic morphology and fine segmentation using naive Bayes classifier. A total of 18 microaneurysms features are proposed in this paper and they are extracted for naive Bayes classifier. The detected microaneurysms are validated by comparing at pixel level with ophthalmologists' hand-drawn ground-truth. The sensitivity, specificity, precision and accuracy were 85.68, 99.99, 83.34 and 99.99%, respectively.
机译:微生物瘤是糖尿病视网膜病变的第一个临床迹象,糖尿病患者视力丧失的主要原因。早期的微内肌瘤检测可以帮助降低失明的发生率。由于它们的微小尺寸,低对比度和与血管相似,微内塞的自动检测仍然是一个开放的问题。特别困难检测细微的微瘤,特别是来自非扩张的瞳孔,这是本文的目标。本文的过程有两个主要分割步骤。它们是使用Naive Bayes分类器的数学形态和细分的粗细分。本文提出了总共18个微安瘤功能,并为朴素贝叶斯分类器提取。通过以像素水平与眼科绘制的地面真理相比,通过比较验证检测到的微安瘤。敏感性,特异性,精度和准确性分别为85.68,99.99,83.34和99.99%。

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