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AUTOMATIC GLOBAL VESSEL SEGMENTATION AND CATHETER REMOVAL USING LOCAL GEOMETRY INFORMATION AND VECTOR FIELD INTEGRATION

机译:自动全局船舶分割和导管使用当地几何信息和矢量字段集成拆卸

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Vessel enhancement and segmentation aim at (binary) per-pixel segmentation considering certain local features as probabilistic vessel indicators. We propose a new methodology to combine any local probability map with local directional vessel information. The resulting global vessel segmentation is represented as a set of discrete streamlines populating the vascular structures and providing additional connectivity and geometric shape information. The streamlines are computed by numerical integration of the directional vector field that is obtained from the eigenanalysis of the local Hessian indicating the local vessel direction. The streamline representation allows for sophisticated post-processing techniques using the additional information to refine the segmentation result with respect to the requirements of the particular application such as image registration. We propose different post-processing techniques for hierarchical segmentation, centerline extraction, and catheter removal to be used for X-ray angiograms. We further demonstrate how the global approach is able to significantly improve the segmentation compared to conventional local Hessian-based approaches.
机译:考虑到某些局部特征作为概率血管指标,血管增强和分割瞄准(二进制)单像素分割。我们提出了一种新的方法,将任何局部概率图与局部定向船只信息组合。得到的全局血管分割被表示为填充血管结构的一组离线流,并提供额外的连接和几何形状信息。通过从指示局部血管方向的本地Hessian的特征分析获得的定向矢量场的数字积分来计算流线。流线式表示允许使用附加信息对特定应用程序的诸如图像配准的特定应用的要求来优化分割结果的复杂后处理技术。我们提出了不同的分层分段,中心线提取和导管移除的不同后处理技术,以用于X射线血管造影。我们进一步展示了与传统的当地黑森州的方法相比,全球方法如何能够显着改善细分。

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