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Investigating image enhancement methods for better classification of retinal blood vessels into arteries and veins

机译:研究改善视网膜血管进入动脉和静脉的图像增强方法

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Developing an automatic tool for classification of retinal blood vessels into arteries and veins has gone under special attention recently due to its importance in early diagnosis of several diseases namely, diabetes, hypertension and stroke. Indeed such pathologies make alternations in artery or vein vessel tree leading to an abnormal arteriolar-to-venular width ratio (AVR). To measure AVR, arteries and veins must be carefully separated. For this purpose, a few methods have been proposed in the literature most of which are based on feature extraction. However, different factors such as non-uniformity of lightness during the image acquisition process degrade the quality of retinal images which in turn affect the results of computer algorithms. In this paper, we investigate a number of image enhancement techniques for improving the quality of retinal images considering the specific characteristics of those images. Experimental results demonstrate the significant role of image enhancement as a preprocessing step in developing an efficient system for automatic classification of retinal blood vessels into arteries and veins.
机译:由于其在几种疾病早期诊断的重要性,糖尿病,高血压和中风的重要性,开发了视网膜血管分类到动脉和静脉的自动化工具。实际上,这种病理学在动脉或静脉血管树中进行交替,导致异常的动脉瘤 - 瓣膜宽度比(AVR)。为了测量AVR,必须仔细分离动脉和静脉。为此目的,在文献中提出了一些方法,其中大部分是基于特征提取。然而,在图像采集过程中的不同因素如不均匀的亮度,降低了视网膜图像的质量,这反过来影响计算机算法的结果。在本文中,我们研究了许多用于提高考虑这些图像的特定特征的视网膜图像质量的图像增强技术。实验结果表明了图像增强作为开发高效系统的预处理步骤,以便将视网膜血管自动分类为动脉和静脉的预处理。

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