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Automatic Vasculature Identification in Coronary Angiograms by Adaptive Geometrical Tracking

机译:自适应几何跟踪冠状动脉血管造影中自动脉管识别

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As the uneven distribution of contrast agents and the perspective projection principle of X-ray, the vasculatures in angiographic image are with low contrast and are generally superposed with other organic tissues; therefore, it is very difficult to identify the vasculature and quantitatively estimate the blood flow directly from angiographic images. In this paper, we propose a fully automatic algorithm named adaptive geometrical vessel tracking (AGVT) for coronary artery identification in X-ray angiograms. Initially, the ridge enhancement (RE) image is obtained utilizing multiscale Hessian information. Then, automatic initialization procedures including seed points detection, and initial directions determination are performed on the RE image. The extracted ridge points can be adjusted to the geometrical centerline points adaptively through diameter estimation. Bifurcations are identified by discriminating connecting relationship of the tracked ridge points. Finally, all the tracked centerlines are merged and smoothed by classifying the connecting components on the vascular structures. Synthetic angiographic images and clinical angiograms are used to evaluate the performance of the proposed algorithm. The proposed algorithm is compared with other two vascular tracking techniques in terms of the efficiency and accuracy, which demonstrate successful applications of the proposed segmentation and extraction scheme in vasculature identification.
机译:作为造影剂的不均匀分布和X射线的透视投影原理,血管造影图像中的血管具有低对比度,并且通常与其他有机组织叠加;因此,很难识别脉管系统并定量地从血管造影图像中估计血流。在本文中,我们提出了一种全自动算法,名为自适应几何血管跟踪(AGVT),用于X射线血管造影中的冠状动脉识别。最初,利用MultiScale Hessian信息获得RIDGE增强(RE)图像。然后,在RE图像上执行包括种子点检测的自动初始化过程和初始方向确定。可以通过直径估计自适应地将提取的脊点调节到几何中心线点。通过区分跟踪脊点的连接关系来识别分叉的分叉。最后,所有跟踪的中心线都是通过对血管结构上的连接组件进行分类而合并和平滑。合成血管造影图像和临床血管仪用于评估所提出的算法的性能。在效率和准确性方面,将所提出的算法与其他两种血管跟踪技术进行比较,这证明了血管系统识别中提出的分段和提取方案的成功应用。

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