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Detection of Early Signs of Diabetic Retinopathy Based on Textural and Morphological Information in Fundus Images

机译:基于眼底图像中的纹理和形态学信息检测糖尿病性视网膜病变的早期迹象

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摘要

Estimated blind people in the world will exceed 40 million by 2025. To develop novel algorithms based on fundus image descriptors that allow the automatic classification of retinal tissue into healthy and pathological in early stages is necessary. In this paper, we focus on one of the most common pathologies in the current society: diabetic retinopathy. The proposed method avoids the necessity of lesion segmentation or candidate map generation before the classification stage. Local binary patterns and granulometric profiles are locally computed to extract texture and morphological information from retinal images. Different combinations of this information feed classification algorithms to optimally discriminate bright and dark lesions from healthy tissues. Through several experiments, the ability of the proposed system to identify diabetic retinopathy signs is validated using different public databases with a large degree of variability and without image exclusion.
机译:估计到2025年,世界盲人将超过4000万。有必要开发基于眼底图像描述符的新颖算法,以便在早期阶段将视网膜组织自动分类为健康和病理性疾病。在本文中,我们关注于当今社会中最常见的病理学之一:糖尿病性视网膜病。所提出的方法避免了在分类阶段之前进行病变分割或候选图生成的必要性。局部计算二进制模式和粒度分布图,以从视网膜图像中提取纹理和形态信息。此信息馈送分类算法的不同组合可以最佳地区分健康组织的明暗病变。通过几个实验,使用具有较大可变性且不排除图像的不同公共数据库,验证了所提出系统识别糖尿病性视网膜病迹象的能力。

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