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Probabilistic vessel axis tracing and its application to vessel segmentation with stream surfaces and minimum cost paths.

机译:概率性船舶轴跟踪及其在具有流面和最小成本路径的船舶分段中的应用。

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We propose a novel framework to segment vessels on their cross-sections. It starts with a probabilistic vessel axis tracing in a gray-scale three-dimensional angiogram, followed by vessel boundary delineation on cross-sections derived from the extracted axis. It promotes a more intuitive delineation of vessel boundaries which are mostly round on the cross-sections. The prior probability density function of the axis tracer's formulation permits seamless integration of user guidance to produce continuous traces through regions that contain furcations, diseased portions, kissing vessels (vessels in close proximity to each other) and thin vessels. The contour that outlines the vessel boundary in a 3-D space is determined as the minimum cost path on a weighted directed acyclic graph derived from each cross-section. The user can place anchor points to force the contour to pass through. The contours obtained are tiled to approximate the vessel boundary surface. Since we use stream surfaces generated w.r.t. the traced axis as cross-sections, non-intersecting adjacent cross-sections are guaranteed. Therefore, the tiling can be achieved by joining vertices of adjacent contours. The vessel boundary surface is then deformed under constrained movements on the cross-sections and is voxelized to produce the final vascular segmentation. Experimental results on synthetic and clinical data have shown that the vessel axes extracted by our tracer are continuous and less jittered as compared with the other two trace-based algorithms. Furthermore, the segmentation algorithm with cross-sections are robust to noise and can delineate vessel boundaries that have level of variability similar to those obtained manually.
机译:我们提出了一种新颖的框架来在其横截面上分割血管。它以灰度三维三维血管造影图中的概率性血管轴追踪开始,然后在从提取的轴导出的横截面上描绘血管边界。它促进了对血管边界的更直观的描绘,这些血管边界在横截面上大多是圆形的。轴跟踪器公式的先验概率密度函数允许无缝整合用户指南,以通过包含分叉,患病部位,接吻器皿(彼此紧靠的血管)和细血管的区域产生连续的轨迹。在3D空间中勾勒出血管边界的轮廓确定为从每个横截面得出的加权有向无环图中的最小成本路径。用户可以放置锚点以迫使轮廓通过。将获得的轮廓平铺以逼近容器边界表面。由于我们使用的是w.r.t.跟踪轴为横截面,保证不相交的相邻横截面。因此,可以通过接合相邻轮廓的顶点来实现平铺。然后,在边界移动的约束下使血管边界表面变形,并体素化以产生最终的血管分割。综合和临床数据的实验结果表明,与其他两种基于迹线的算法相比,我们的示踪剂提取的血管轴是连续的并且抖动更少。此外,具有横截面的分割算法对噪声具有鲁棒性,并且可以描绘出具有类似于手动获得的可变性水平的可变性的血管边界。

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