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A Geometry-Driven Optical Flow Warping for Spatial Normalization of Cortical Surfaces

机译:用于皮质表面空间归一化的几何驱动光学流整形

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摘要

Spatial normalization is frequently used to map data to a standard coordinate system by removing inter-subject morphological differences, thereby allowing for group analysis to be carried out. The work presented in this paper is motivated by the need for an automated cortical surface normalization technique that will automatically identify homologous cortical landmarks and map them to the same coordinates on a standard manifold. The geometry of a cortical surface is analyzed using two shape measures that distinguish the sulcal and gyral regions in a multi-scale framework. A multichannel optical flow warping procedure aligns these shape measures between a reference brain and a subject brain, creating the desired normalization. The partial differential equation that carries out the warping is implemented in a Euclidean framework in order to facilitate a multi-resolution strategy, thereby permitting large deformations between the two surfaces. The technique is demonstrated by aligning 33 normal cortical surfaces and showing both improved structural alignment in manually labeled sulci and improved functional alignment in positron emission tomography data mapped to the surfaces. A quantitative comparison between our proposed surface-based spatial normalization method and a leading volumetric spatial normalization method is included to show that the surface-based spatial normalization performs better in matching homologous cortical anatomies.
机译:通过消除对象间的形态学差异,经常使用空间归一化将数据映射到标准坐标系,从而允许进行组分析。本文提出的工作是由对自动皮质表面归一化技术的需求所激发的,该技术将自动识别同源皮质界标并将其映射到标准歧管上的相同坐标上。使用两种形状量度来分析皮质表面的几何形状,这两个量度量度可以在多尺度框架中区分沟渠和回旋区域。多通道光流整形过程将这些形状量度在参考大脑和受试者大脑之间对齐,从而创建所需的归一化。为了促进多分辨率策略,在欧几里得框架中实现了执行变形的偏微分方程,从而允许两个表面之间发生较大的变形。通过对齐33个正常皮质表面并在手动标记的龈沟中显示出改善的结构对齐和在映射到该表面的正电子发射断层扫描数据中显示了功能对齐,从而证明了该技术。我们提出的基于表面的空间归一化方法与领先的体积空间归一化方法之间的定量比较被包括在内,以表明基于表面的空间归一化在匹配同源皮质解剖学方面表现更好。

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