首页> 外文会议>International Conference on Medical Image Computing and Computer-Assisted Intervention(MICCAI 2007) pt.2; 20071029-1102; Brisbane(AU) >Evaluation of Shape-Based Normalization in the Corpus Callosum for White Matter Connectivity Analysis
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Evaluation of Shape-Based Normalization in the Corpus Callosum for White Matter Connectivity Analysis

机译:评估Corp体中基于形状的归一化以进行白色物质连通性分析

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Recently, concerns have been raised that the correspondences computed by volumetric registration within homogeneous structures are primarily driven by regularization priors that differ among algorithms. This paper explores the correspondence based on geometric models for one of those structures, mid-sagittal section of the corpus callosum (MSCC), and compared the result with registration paradigms. We use geometric model called continuous medial representation (cm-rep) to normalize anatomical structures on the basis of medial geometry, and use features derived from diffusion tensor tractography for validation. We show that shape-based normalization aligns subregions of the MSCC, defined by connectivity, more accurately than normalization based on volumetric registration. Furthermore, shape-based normalization helps increase the statistical power of group analysis in an experiment where features derived from diffusion tensor tractography are compared between two cohorts. These results suggest that cm-rep is an appropriate tool for normalizing the MSCC in white matter studies.
机译:近来,引起关注的是,由均质结构内的体积配准计算出的对应关系主要由在算法之间不同的正则化先验驱动。本文探索了基于几何模型的对应关系,其中一种结构是call体的矢状中段(MSCC),并将结果与​​配准范例进行了比较。我们使用称为连续内侧表示(cm-rep)的几何模型在内侧几何的基础上规范化解剖结构,并使用从扩散张量束线图得出的特征进行验证。我们显示,基于形状的归一化比基于体积配准的归一化更准确地对齐由连通性定义的MSCC的子区域。此外,基于形状的归一化有助于在实验中比较群体扩散的统计能力,在实验中,比较了来自两个组的扩散张量束线图的特征。这些结果表明,cm-rep是在白质研究中标准化MSCC的合适工具。

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