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Improved analysis of Diabetic Maculopathy using level set spatial fuzzy clustering

机译:水平集空间模糊聚类对糖尿病性黄斑病变的改进分析

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Patients suffering from Diabetic Retinopathy are at a high risk of sight threatening disease, the Diabetic Maculopathy. It gets initiated with the deposition of lesions formed from blood constituents, in a region of one optic disc diameter centered at fovea of retina. The effect becomes vision threatening when the deposition of the lesions spread close to fovea. These lesions are of two types, namely bright lesions such as soft and hard Exudates and dark lesions including Microaneurysms and Hemorrhages. The detection of the lesions become difficult when they overlap or lie close to each other. In this paper, we have presented a novel method for improving the detection of bright and dark lesions in positive Diabetic Maculopathy images. The algorithm consists of two stages. Initially the fovea is detected and the region for analysis of Maculopathy is marked. Secondly, level set spatial fuzzy clustering is performed over the region to enhance the detection of lesions and hence analysis of the disease. The performance evaluation of the proposed method is carried out by comparing the result with manually segmented ground truth images, obtained with the help of ophthalmologists. The results show improvement of the analysis as compared to present methodologies.
机译:患有糖尿病性视网膜病的患者极有威胁视力的疾病糖尿病黄斑病的风险。它开始于在中央视网膜中央凹的一个视盘直径区域内沉积由血液成分形成的病变。当病变的沉积扩散到中央凹附近时,这种作用会威胁到视力。这些病变有两种类型,即明亮的病变(例如软性和硬性渗出液)和黑暗的病变(包括微动脉瘤和出血)。当病变重叠或彼此靠近时,很难检测到病变。在本文中,我们提出了一种新的方法,用于改善糖尿病性黄斑病变阳性图像中明暗病变的检测。该算法包括两个阶段。最初,检测到中央凹,并标记出用于分析黄斑病变的区域。其次,在该区域上执行水平集空间模糊聚类,以增强对病变的检测以及对疾病的分析。通过将结果与在眼科医生的帮助下获得的手动分割的地面真实图像进行比较,来进行所提出方法的性能评估。结果表明与目前的方法相比,分析的改进。

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