Automated identification of exudates for detection of macular edema

Umer Aftab, M. Akram
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引用次数: 18

Abstract

Macular edema is an advance stage of diabetic retinopathy which affects central vision of diabetes patients. The main cause of edema is the appearance of exudates near or on macular region in human retina. An automated system for early detection of macular edema should identify all possible exudates present on the surface of retina. In this paper, we present a method for the identification of exudates in colored retinal images which will help in building a computer aided diagnostic system for macular edema. The proposed system consists of three stages i.e. candidate exudate detection, feature extraction and classification. We use filter bank for candidate exudate detection, basic properties of exudates for feature extraction and Gaussian mixture model for classification. This paper presents the performance of our system on three retinal image databases and comparative results with existing methods.
自动识别黄斑水肿渗出物
黄斑水肿是糖尿病视网膜病变的进展阶段,影响糖尿病患者的中央视力。水肿的主要原因是视网膜黄斑附近或黄斑上出现渗出物。早期检测黄斑水肿的自动化系统应该识别视网膜表面所有可能的渗出物。本文提出了一种彩色视网膜图像中渗出物的识别方法,这将有助于建立黄斑水肿的计算机辅助诊断系统。该系统包括候选渗出物检测、特征提取和分类三个阶段。我们使用滤波器组进行候选渗出液检测,使用渗出液的基本性质进行特征提取,使用高斯混合模型进行分类。本文介绍了该系统在三种视网膜图像数据库上的性能,并与现有方法进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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