Automatic grading of macular degeneration from color fundus images

J. Medhi, M. K. Nath, S. Dandapat
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引用次数: 22

Abstract

Diabetic retinopathy causes blindness due to the physiological changes in the retina of human eye, which occurs due to the progression of diabetes. Diabetic retinopathy images differ from normal fundus images by lesions such as: microaneurysm, hemorrhages, exudates, cotton wool spots and variations in blood vessels etc. Appearance of these features on the retina leads to vision loss. The sharp vision is affected severely when the features appear on the macula as it contains higher concentration of cones. In this paper macula and fovea (macula center) are detected based on the localization. The detection of these feature is essential for automatic grading of macular edema or degeneration. Depending on the number of lesions on the macula the severity of the macular degeneration can be predicted. The method is tested on DRIVE, Aria and DIARETDB1 databases. The method successfully detects the macula and fovea for all the images. The accuracy of the proposed method of macula detection is found to be 100% in normal images. The method is also applied on images with lesions. Here the overlapped region of the macula and lesions are detected to find the severity of macular degeneration.
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黄斑变性彩色眼底图像的自动分级
糖尿病视网膜病变是由于糖尿病的进展引起人眼视网膜的生理变化而导致失明。糖尿病视网膜病变图像与正常眼底图像的不同之处在于:微动脉瘤、出血、渗出、棉絮斑和血管变异等病变。这些特征出现在视网膜上会导致视力丧失。当这些特征出现在黄斑上时,锐利的视力受到严重影响,因为黄斑含有高浓度的视锥细胞。本文采用基于定位的方法检测黄斑和黄斑中心。这些特征的检测对于黄斑水肿或变性的自动分级是必不可少的。根据黄斑病变的数量,可以预测黄斑变性的严重程度。该方法在DRIVE、Aria和DIARETDB1数据库上进行了测试。该方法成功地检测了所有图像的黄斑和中央凹。在正常图像中,该方法的检测准确率为100%。该方法也适用于有病变的图像。在这里,黄斑和病变的重叠区域被检测到黄斑变性的严重程度。
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