首页> 外文会议>International conference on medical image computing and computer-assisted intervention;MICCAI 2010 >Improving Deformable Surface Meshes through Omni-Directional Displacements and MRFs
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Improving Deformable Surface Meshes through Omni-Directional Displacements and MRFs

机译:通过全向位移和MRF改善可变形曲面网格

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Deformable surface models are often represented as triangular meshes in image segmentation applications. For a fast and easily regularized deformation onto the target object boundary, the vertices of the mesh are commonly moved along line segments (typically surface normals). However, in case of high mesh curvature, these lines may intersect with the target boundary at "non-corresponding" positions, or even not at all. Consequently, certain deformations cannot be achieved. We propose an approach that allows each vertex to move not only along a line segment, but within a surrounding sphere. We achieve globally regularized deformations via Markov Random Field optimization. We demonstrate the potential of our approach with experiments on synthetic data, as well as an evaluation on 2x106 coronoid processes of the mandible in Cone-Beam CTs, and 56 coccyxes (tailbones) in low-resolution CTs.
机译:在图像分割应用中,可变形表面模型通常表示为三角形网格。为了在目标对象边界上快速轻松地变形,通常将网格的顶点沿着线段(通常是表面法线)移动。但是,在高网格曲率的情况下,这些线可能在“非对应”位置与目标边界相交,甚至根本不相交。因此,不能实现某些变形。我们提出一种方法,该方法不仅允许每个顶点沿线段移动,而且可以在周围球体内移动。我们通过马尔可夫随机场优化实现全局正则化变形。我们通过合成数据实验以及对锥形束CT中下颌骨2x106冠状突的评估以及低分辨率CT中56个尾骨(尾骨)的评估,证明了该方法的潜力。

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