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首页> 外文期刊>Current Journal of Applied Science and Technology >A Hybrid Morphological Based SegmentationMethod for Extracting Retina Blood Vessels Grid
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A Hybrid Morphological Based SegmentationMethod for Extracting Retina Blood Vessels Grid

机译:基于混合形态学的视网膜血管网格分割方法

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摘要

The patterns of retinal blood vessels play major role in many different applications, such as diseases diagnosis and human identification. The accurate segmentation of vessels body appeared in retina images is vital to make successful human identification decisions. This paper presents a new method for vascular network extraction from color retinal images. The proposed method consists of three main stages: Preprocessing, segmentation, and post-processing. Preprocessing stage is applied to enhance the local appearance of blood vessels in retinal images; its main task is to make compensation for the global/local contrast variance over all parts of the retina area, such that the dynamic range for brightness levels of the vessels' pixels becomes narrow and lies in the dark region of brightness scale. In segmentation stage, the grid of retina vessels had been extracted using thresholding method; where the vessels appear dark, thin and connected bodies in retina area. Finally, post preprocessing stage is applied to eliminate the noise and to remove the produced disconnections in the extracted vessels due to thresholding.The proposed method was tested on the two publicly available datasets: (i) DRIVE (Digital Retinal Images for Vessel Extraction) and (ii) STARE (Structured Analysis of the Retina). The test results indicated that the proposed method is efficient to segment the large vascular areas and outperforms of many introduced methods in the literature. The test results indicated that the attained accuracy of the proposed method was 97.41% in DRIVE dataset, and 97.43% in STARE dataset.
机译:视网膜血管的模式在许多不同的应用中起主要作用,例如疾病诊断和人类识别。视网膜图像中出现的血管体的正确分割对于做出成功的人类识别决定至关重要。本文提出了一种从彩色视网膜图像中提取血管网络的新方法。所提出的方法包括三个主要阶段:预处理,分割和后处理。预处理阶段用于增强视网膜图像中血管的局部外观;其主要任务是补偿视网膜区域所有部分的整体/局部对比度差异,以使血管像素亮度水平的动态范围变窄,并位于亮度标度的暗区。在分割阶段,采用阈值法提取视网膜血管的网格。在视网膜区域,血管显得暗淡,稀薄且相互连接。最后,采用后预处理阶段以消除噪声并消除由于阈值引起的提取血管中的断开连接。该方法在两个公开可用的数据集上进行了测试:(i)DRIVE(血管提取用数字视网膜图像)和(ii)STARE(视网膜的结构分析)。测试结果表明,该方法可有效分割大血管区域,并且优于许多文献中介绍的方法。测试结果表明,该方法在DRIVE数据集中达到了97.41%,在STARE数据集中达到了97.43%。

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