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Automatic Extraction of Blood Vessels, Bifurcations and End Points in the Retinal Vascular Tree

机译:视网膜血管树中的自动提取血管,分叉和终点

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In this paper we present an effective algorithm for automated extraction of the vascular tree in retinal images, including bifurcations, crossovers and end-points detection. Correct identification of these features in the ocular fundus helps the diagnosis of important systematic diseases, such as diabetes and hypertension. The pre-processing consists in artefacts removal based on anisotropic diffusion filter. Then a matched filter is applied to enhance blood vessels. The filter uses a full adaptive kernel because each vessel has a proper orientation and thickness. The kernel of the filter needs to be rotated for all possible directions. As a consequence, a suitable kernel has been designed to match this requirement. The maximum filter response is retained for each pixel and the contrast is increased again to make easier the next step. A threshold operator is applied to obtain a binary image of the vascular tree. Finally, a length filter produces a clean and complete vascular tree structure by removing isolated pixels, using the concept of connected pixels labelling. Once the binary image of vascular tree is obtained, we detect vascular bifurcations, crossovers and end points using a cross correlation based method. We measured the algorithm performance evaluating the area under the ROC curve computed comparing the number of blood vessels recognized using our approach with those labelled manually in the dataset provided by the Drive database. This curve is used also for threshold tuning.
机译:在本文中,我们提出了一种有效的血管树在视网膜图像中的血管树的自动提取算法,包括分叉,横梁和终点检测。正确鉴定眼底的这些特征有助于诊断重要的系统疾病,如糖尿病和高血压。预处理包括基于各向异性扩散滤波器去除的人工制品。然后应用匹配的滤镜来增强血管。过滤器使用完整的自适应核,因为每个容器具有正确的方向和厚度。滤波器的内核需要旋转所有可能的方向。因此,合适的内核旨在匹配此要求。为每个像素保留最大滤波器响应,并且对比度再次增加以使下一步骤更容易。应用阈值运算符来获得血管树的二进制图像。最后,使用连接像素标记的概念,通过移除隔离像素,长度过滤器产生干净和完整的血管树结构。一旦获得血管树的二进制图像,我们使用基于横相关的方法检测血管分叉,交叉探测和终点。我们测量了评估ROC曲线下的区域的算法性能,计算了使用我们的方法在驱动数据库提供的数据集中手动标记的那些识别的血管数量的ROC曲线下的血管数。该曲线也用于阈值调谐。

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