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Automated modeling of tubular blood vessels in 3D MR angiography images

机译:三维MR血管造影图像中管状血管自动建模

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An algorithm is developed for automated modeling of tubular blood vessel segments, based on their noisy 3D raster image. The approach is based on continuous-function approximation of binary skeleton lines extracted from thresholded multiscale vesselness images. The continuous centerline functions allow robust computation of tangent vectors, to define normal planes and 3D image cross-sections on those planes. A vessel intensity profile model is next least-squares fitted to the image cross-section along straight lines segments - anchored at centerline and extended toward vessel walls, at a number of directions covering the full angle. Vessel parameters, such as local radius for circular vessels, distances between the centerline and edges for non-circular shapes or intensity profile corresponding to blood velocity distribution, are estimated through the model fitting. Subvoxel accuracy vessel representation, robustness to noise and image inhomogeneity are of primary concern. The algorithm is applied to 3D synthetic and real-life magnetic resonance images. It is demonstrated that the proposed method facilitates automated extraction of geometric vessel-tree models from images and outperforms the well-known Hessian vector approach in terms of accurate estimation of the centerline local direction in noisy images.
机译:基于其嘈杂的3D光栅图像,开发了一种用于自动建模的算法,用于管状血管段的自动建模。该方法基于从阈值多尺度血管图像提取的二进制骨架线的连续函数近似。连续的中心线功能允许强大的切线矢量,在这些平面上定义正常平面和3D图像横截面。血管强度型材模型是沿着直线段安装到图像横截面的下一个断路器 - 在中心线处锚固并朝向血管壁延伸,在覆盖全角度的方向上。诸如圆形容器的局部半径的血管参数,通过模型配合估计与血管分布对应的非圆形形状或强度分布的中心线和边缘之间的距离。子痫精度容器表示,对噪声和图像不均匀性的鲁棒性具有主要关注点。该算法应用于3D合成和实际磁共振图像。结果证明,该方法有助于从图像中自动提取几何血管树模型,并在嘈​​杂图像中准确估计中心线局部方向的准确估计方面优于众所周知的Hessian向量方法。

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