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Multi-modal 3D Image Registration Based on Estimation of Non-rigid Deformation

机译:基于非刚性变形估计的多模态3D图像配准

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This paper presents a novel approach for registration of 3D images based on optimal free-form rigid transformation. A proposal consists in semiautomatic image segmentation reconstructing 3D object surfaces in medical images. The proposed extraction technique employs gradients in sequences of 3D medical images to attract a deformable surface model by using imaging planes that correspond to multiple locations of feature points in space, instead of detecting contours on each imaging plane in isolation. Feature points are used as a reference before and after a deformation. An issue concerning this relation is difficult and deserves attention to develop a methodology to find the optimal number of points that gives the best estimates and does not sacrifice computational speed. After generating a representation for each of two 3D objects, we find the best similarity transformation that represents the object deformation between them. The proposed approach has been tested using different imaging modalities by morphing data from Histology sections to match MRI of carotid artery.
机译:本文提出了一种基于最佳自由形式刚性变换的3D图像配准的新方法。一项提议包括在医学图像中重建3D对象表面的半自动图像分割。所提出的提取技术采用3D医学图像序列中的梯度,以通过使用与空间中特征点的多个位置相对应的成像平面来吸引可变形表面模型,而不是孤立地检测每个成像平面上的轮廓。变形前后,将特征点用作参考。有关此关系的问题很困难,应引起重视,以开发一种方法来找到给出最佳估计且不牺牲计算速度的最佳点数。在为两个3D对象中的每个对象生成表示后,我们找到了表示它们之间对象变形的最佳相似度转换。通过变形组织学切片的数据以匹配颈动脉MRI,已使用不同的成像方式对提出的方法进行了测试。

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