首页> 外文会议>2011 8th IEEE International Symposium on Biomedical Imaging: From Nano to Macro >Vessel geometry modeling and segmentation using convolution surfaces and an implicit medial axis
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Vessel geometry modeling and segmentation using convolution surfaces and an implicit medial axis

机译:使用卷积曲面和隐式中间轴进行容器几何建模和分割

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In the context of vessel tree structures segmentation with implicit deformable models, we propose to exploit convolution surfaces to introduce a novel variational formulation, robust to bifurcations, tangential vessels and aneurysms. Vessels are represented by an implicit function resulting from the convolution of the centerlines of the vessels, modeled as a second implicit function, with localized kernels of continuously-varying scales. The advantages of this coupled representation are twofold. First, it allows for a joint determination of the vessels centerlines and radii, with a single model relevant for segmentation and visualization tasks. Second, it allows us to define a new shape constraint on the implicit function representing the centerlines, to enforce the tubular shape of the segmented objects. The algorithm has been evaluated on the segmentation of the portal veins in 20 CT-scans of the liver from the 3D-IRCADb-01 database, achieving an average recovery of 73% of the trees with fast computational times.
机译:在使用隐式可变形模型对血管树结构进行分割的背景下,我们建议利用卷积表面来引入一种新颖的变型方案,该结构对分叉,切向血管和动脉瘤具有鲁棒性。血管由隐式函数表示,该隐函数是通过将血管中心线卷积而生成的,该模型被建模为第二隐函数,且局部比例连续变化。这种耦合表示的优点是双重的。首先,它允许使用与分割和可视化任务相关的单个模型来共同确定血管的中心线和半径。其次,它允许我们在表示中心线的隐式函数上定义新的形状约束,以增强分段对象的管状形状。该算法已在3D-IRCADb-01数据库的20例肝脏CT扫描中对门静脉的分割进行了评估,从而以快速的计算时间平均恢复了73%的树木。

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