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首页> 外文期刊>Journal of medical systems >Hybrid Features and Mediods Classification based Robust Segmentation of Blood Vessels
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Hybrid Features and Mediods Classification based Robust Segmentation of Blood Vessels

机译:基于混合特征和Mediods分类的血管稳健分割

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Retinal blood vessels are the source to provide oxygen and nutrition to retina and any change in the normal structure may lead to different retinal abnormalities. Automated detection of vascular structure is very important while designing a computer aided diagnostic system for retinal diseases. Most popular methods for vessel segmentation are based on matched filters and Gabor wavelets which give good response against blood vessels. One major drawback in these techniques is that they also give strong response for lesion (exudates, hemorrhages) boundaries which give rise to false vessels. These false vessels may lead to incorrect detection of vascular changes. In this paper, we propose a new hybrid feature set along with new classification technique for accurate detection of blood vessels. The main motivation is to lower the false positives especially from retinal images with severe disease level. A novel region based hybrid feature set is presented for proper discrimination between true and false vessels. A new modified m-mediods based classification is also presented which uses most discriminating features to categorize vessel regions into true and false vessels. The evaluation of proposed system is done thoroughly on publicly available databases along with a locally gathered database with images of advanced level of retinal diseases. The results demonstrate the validity of the proposed system as compared to existing state of the art techniques.
机译:视网膜血管是为视网膜提供氧气和营养的来源,正常结构的任何变化都可能导致不同的视网膜异常。在设计用于视网膜疾病的计算机辅助诊断系统时,自动检测血管结构非常重要。最流行的血管分割方法是基于匹配的滤波器和Gabor小波,它们对血管具有良好的响应。这些技术的一个主要缺点是,它们也对病变边界(渗出液,出血)产生强烈反应,从而引起假血管。这些错误的血管可能导致对血管变化的错误检测。在本文中,我们提出了一种新的混合特征集以及新的分类技术,以准确检测血管。主要动机是减少误报,尤其是从具有严重疾病水平的视网膜图像中减少误报。提出了一种新颖的基于区域的混合特征集,用于正确区分真假血管。还提出了一种新的基于改进的基于m介质的分类方法,该分类方法使用最有特色的特征将血管区域分为真血管和假血管。拟议系统的评估是在公开可用的数据库以及本地收集的具有高级视网膜疾病图像的数据库上进行的。结果证明了与现有技术水平相比所提出系统的有效性。

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