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Automatic Tracking of Neuro Vascular Tree Paths

机译:自动跟踪神经血管树的路径

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摘要

3-D analysis of blood vessels from volumetric CT and MR datasets has many applications ranging from examination of pathologies such as aneurysm and calcification to measurement of cross-sections for therapy planning. Segmentation of the vascular structures followed by tracking is an important processing step towards automating the 3-D vessel analysis workflow. This paper demonstrates a fast and automated algorithm for tracking the major arterial structures that have been previously segmented. Our algorithm uses anatomical knowledge to identify the start and end points in the vessel structure that allows automation. Voxel coding scheme is used to code every voxel in the vessel based on its geodesic distance from the start point. A shortest path based iterative region growing is used to extract the vessel tracks that are subsequently smoothed using an active contour method. The algorithm also has the ability to automatically detect bifurcation points of major arteries. Results are shown for tracking the major arteries such as the common carotid, internal carotid, vertebrals, and arteries coming off the Circle of Willis across multiple cases with various data related and pathological challenges from 7 CTA cases and 2 MR Time of Flight (TOF) cases.
机译:通过体积CT和MR数据集对血管进行3-D分析具有许多应用,从检查诸如动脉瘤和钙化的病理到测量横截面以进行治疗计划。分割血管结构然后跟踪是实现3D血管分析工作流程自动化的重要处理步骤。本文演示了一种快速自动化的算法,用于跟踪先前已分割的主要动脉结构。我们的算法使用解剖学知识来识别允许自动化的血管结构的起点和终点。体素编码方案用于根据其距起点的测地距离对容器中的每个体素进行编码。基于最短路径的迭代区域生长用于提取血管轨迹,随后使用主动轮廓法对其进行平滑处理。该算法还具有自动检测主要动脉的分叉点的能力。显示的结果可追踪多个病例的主要动脉(例如,总颈动脉,颈内动脉,椎骨和动脉),并从7例CTA病例和2 MR飞行时间(TOF)中获得各种与数据相关的病理挑战案件。

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