基于动态阈值和边缘检测(IDTED)的数字眼底视网膜图像渗出物自动检测方法

Anantha Vidya Sagar, S. Balasubramaniam, V. Chandrasekaran
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引用次数: 36

摘要

由于糖尿病视网膜病变患者与眼科医生的比例很大,因此对患者进行自动筛查以早期发现和预防糖尿病视网膜病变(DR)已成为近年来的主要焦点。渗出物检测是dr的主要步骤之一,本文提出了一种可靠的渗出物检测方法。利用主成分分析(PCA)对视盘进行定位。采用基于活动轮廓的方法对OD的边界进行精确分割。在我们的IDTED方法中,将直方图规范和局部对比度增强等预处理技术与动态阈值(DT)和边缘检测相结合,用于渗出物检测。IDTED算法在25张数字眼底视网膜图像上进行了测试,并与人类评分员的表现进行了比较,结果显示,该算法的平均灵敏度为99%,平均预测率为93%
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Novel Integrated Approach Using Dynamic Thresholding and Edge Detection (IDTED) for Automatic Detection of Exudates in Digital Fundus Retinal Images
The automatic screening of patients for early detection and prevention of diabetic retinopathy (DR) has been the prime focus in recent times due to the large ratio of patients to medical ophthalmologists. Exudate detection is one of the main steps of DR. A reliable method for detection of exudates is presented in this paper. Optic disc (OD) is localized by the principle component analysis (PCA). Active contour based approach is used for accurate segmentation of boundary of OD. In our IDTED method, pre-processing techniques such as histogram specification and local contrast enhancement are integrated with dynamic thresholding (DT) and edge detection for exudate detection. The IDTED algorithm, when tested on 25 digital fundus retinal images and compared with the performance of a human grader, has shown a mean sensitivity of 99% and a mean predictivity of 93%
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