Performance analysis of matched filter techniques for automated detection of blood vessels in retinal images

A. Banumathi, R. Devi, Raju, V.A. Kumar
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引用次数: 25

Abstract

The paper addresses issues in the development of an automated system for the analysis of retinal angiographic images, focusing on the segmentation of the blood vessels. The performance of three different template matching algorithms are analyzed in respect of the detection of blood vessels in retinal images for both gray-level and color images. The Gaussian matched filter (GMF) and binary matched filter (BMF) are used to detect the edges of blood vessels and capillaries of gray-level images and also to reduce the noise. The Kirsch template matched filter (KMF) is used for the same purpose in color images. The results obtained provide the complete vessel map, thereby making diagnosis easier for the ophthalmologist.
匹配滤波技术在视网膜图像血管自动检测中的性能分析
本文解决了视网膜血管造影图像分析自动化系统开发中的问题,重点是血管的分割。分析了三种不同的模板匹配算法在灰度和彩色视网膜图像血管检测中的性能。采用高斯匹配滤波器(GMF)和二值匹配滤波器(BMF)对灰度图像的血管和毛细血管边缘进行检测并降低噪声。基尔希模板匹配滤波器(KMF)在彩色图像中用于相同的目的。获得的结果提供了完整的血管图,从而使眼科医生更容易诊断。
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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