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Model-to-image based 2D-3D-registration of angiographic data

机译:基于模型到图像的2D-3D - 血管造影数据注册

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We propose a novel registration method, which combines well-known vessel detection techniques with aspects of model adaptation. The proposed method is tailored to the requirements of 2D-3D-registration of interventional angiographic X-ray data such as acquired during abdominal procedures. As prerequisite, a vessel centerline is extracted out of a rotational angiography (3DRA) data set to build an individual model of the vascular tree. Following the two steps of local vessel detection and model transformation the centerline model is matched to one dynamic subtraction angiography (DSA) target image. Thereby, the in-plane position and the 3D orientation of the centerline is related to the vessel candidates found in the target image minimizing the residual error in least squares manner. In contrast to feature-based methods, no segmentation of the vessel tree in the 2D target image is required. First experiments with synthetic angiographies and clinical data sets indicate that matching with the proposed model-to-image based registration approach is accurate and robust and is characterized by a large capture range.
机译:我们提出了一种新颖的注册方法,其结合了众所周知的血管检测技术,具备模型适应的方面。所提出的方法对介入血管X射线数据的2D-3D登记的要求进行了定制,例如在腹部程序期间获得。作为先决条件,血管中心线被提取出旋转血管造影(3DRA)数据集以构建血管树的单独模型。在本地血管检测和模型变换的两个步骤之后,中心线模型与一个动态减法血管造影(DSA)目标图像匹配。因此,中心线的面内位置和3D取向与在目标图像中发现的血管候选,最小化最小二乘方式的残余误差。与基于特征的方法相比,需要2D目标图像中的血管树的分割。合成血管造影的第一个实验和临床数据集表明,与所提出的基于模型 - 图像的登记方法匹配是准确的且稳健的,并且具有大的捕获范围的特征。

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