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Comparison of volumetric registration algorithms for tensor-based morphometry

机译:基于张量的形态计量的体积配准算法比较

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Nonlinear registration of brain MRI scans is often used to quantify morphological differences associated with disease or genetic factors. Recently, surface-guided fully 3D volumetric registrations have been developed that combine intensity-guided volume registrations with cortical surface constraints. In this paper, we compare one such algorithm to two popular high-dimensional volumetric registration methods: large-deformation viscous fluid registration, formulated in a Riemannian framework, and the diffeomorphic “Demons” algorithm. We performed an objective morphometric comparison, by using a large MRI dataset from 340 young adult twin subjects to examine 3D patterns of correlations in anatomical volumes. Surface-constrained volume registration gave greater effect sizes for detecting morphometric associations near the cortex, while the other two approaches gave greater effects sizes subcortically. These findings suggest novel ways to combine the advantages of multiple methods in the future.
机译:脑部MRI扫描的非线性配准通常用于量化与疾病或遗传因素相关的形态学差异。近来,已经开发了结合了强度引导的体积配准和皮质表面约束的表面引导的全3D体积配准。在本文中,我们将一种这样的算法与两种流行的高维体积配准方法进行了比较:在黎曼框架中制定的大变形粘性流体配准和微分形“ Demons”算法。我们使用来自340位年轻的成年双胞胎受试者的大型MRI数据集来进行客观形态计量学比较,以检查解剖体积中相关性的3D模式。受表面约束的体积配准为检测皮层附近的形态计量学关联提供了更大的效果量,而其他两种方法在皮下提供了更大的效果量。这些发现提出了新颖的方法,可以在将来结合多种方法的优点。

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