Projection based algorithm for detecting exudates in color fundus images

C. Eswaran, M. D. Saleh, J. Abdullah
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引用次数: 9

Abstract

The detection and analysis of spot lesions associated with the retinal diseases, such as exudates, microaneurysms, and hemorrhages, play an important role in the screening of retinal diseases. This paper presents an algorithm for segmentation of automated exudates from color fundus images. The proposed algorithm comprises two major stages, namely, pre-processing and segmentation. A novel pre-processing method is employed for background removal through contrast enhancement and noise removal. In the second stage, the pre-processed image is sliced horizontally and vertically into a number of slices and then the corresponding projection values are obtained in order to select an appropriate threshold value for each of the image slices. Finally, optic disc is removed to facilitate the correct identification of exudates and to decrease the false positive cases. DIARETDB1 database is used to measure the accuracy of the proposed method. Based on the experiments which are conducted on pixel basis, it is found that the proposed algorithm achieves better results compared to known algorithms. With the proposed algorithm, average values of 71.2%, 72.77%, 99.98%, 97.72%, 99.74%, and 83.28% are obtained in terms of overlap, sensitivity, specificity, PPV, accuracy, and kappa coefficient respectively.
基于投影的彩色眼底图像渗出物检测算法
视网膜病变相关的斑点病变,如渗出物、微动脉瘤、出血等的检测和分析,在视网膜疾病的筛查中具有重要作用。提出了一种彩色眼底图像中自动渗出物的分割算法。该算法包括预处理和分割两个主要阶段。采用一种新的预处理方法,通过增强对比度和去噪来去除背景。在第二阶段,将预处理后的图像水平和垂直地切片成若干片,然后得到相应的投影值,以便为每一图像切片选择合适的阈值。最后,切除视盘,以便正确识别渗出物,减少假阳性病例。采用DIARETDB1数据库对所提方法的精度进行了测量。基于像素的实验结果表明,与现有算法相比,本文提出的算法取得了更好的效果。该算法在重叠度、灵敏度、特异度、PPV、准确度和kappa系数方面的平均值分别为71.2%、72.77%、99.98%、97.72%、99.74%和83.28%。
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