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Automatic Inter-subject Registration of Whole Body Images

机译:自动进行主体间图像间配准

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摘要

3D inter-subject registration of image volumes is important for tasks such as atlas-based segmentation, deriving population averages, or voxel and tensor-based morphometry. A number of methods have been proposed to tackle this problem but few of them have focused on the problem of registering whole body image volumes acquired either from humans or small animals. These image volumes typically contain a large number of articulated structures, which makes registration more difficult than the registration of head images, to which the vast majority of registration algorithms have been applied. This paper presents a new method for the automatic registration of whole body CT volumes, which consists of two steps. Skeletons and external surfaces are first brought into approximate correspondence with a robust point-based method. Transformations so obtained are refined with an intensity-based algorithm that includes spatial adaptation of the transformation's stiffness. The approach has been applied to whole body CT images of mice and to CT images of the human upper torso. We demonstrate that the approach we propose can successfully register image volumes even when these volumes are very different in size and shape or if they have been acquired with the subjects in different positions.
机译:图像体积的3D对象间配准对于诸如基于图集的分割,导出总体平均值或基于体素和张量的形态测量等任务非常重要。已经提出了许多方法来解决这个问题,但是很少有方法集中在记录从人或小动物获得的全身图像体积的问题上。这些图像体积通常包含大量的关节结构,这使得配准比头部图像的配准更加困难,而头部图像的配准已应用到大部分配准算法中。本文提出了一种自动注册全身CT量的新方法,该方法包括两个步骤。首先使用鲁棒的基于点的方法使骨骼和外表面近似对应。如此获得的变换将使用基于强度的算法进行优化,该算法包括对变换的刚度进行空间适应。该方法已应用于小鼠的全身CT图像和人体上躯干的CT图像。我们证明了我们提出的方法可以成功注册图像体积,即使这些体积在大小和形状上有很大差异,或者是在不同位置的对象下获得的。

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