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Automatic clustering and population analysis of white matter tracts using maximum density paths

机译:使用最大密度路径对白质区域进行自动聚类和种群分析

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We introduce a framework for population analysis of white matter tracts based on diffusion-weighted images of the brain. The framework enables extraction of fibers from high angular resolution diffusion images (HARDI); clustering of the fibers based partly on prior knowledge from an atlas; representation of the fiber bundles compactly using a path following points of highest density (maximum density path; MDP); and registration of these paths together using geodesic curve matching to find local correspondences across a population. We demonstrate our method on 4-Tesla HARDI scans from 565 young adults to compute localized statistics across 50 white matter tracts based on fractional anisotropy (FA). Experimental results show increased sensitivity in the determination of genetic influences on principal fiber tracts compared to the tract-based spatial statistics (TBSS) method. Our results show that the MDP representation reveals important parts of the white matter structure and considerably reduces the dimensionality over comparable fiber matching approaches.
机译:我们介绍了一个基于脑扩散加权图像的白质区域人口分析框架。该框架能够从高角度分辨率扩散图像(HARDI)中提取纤维;部分地根据地图集的先验知识对纤维进行聚类;使用跟随最高密度点的路径(最大密度路径; MDP)紧凑地表示纤维束;并使用测地曲线匹配将这些路径配准在一起,以找到整个种群的局部对应关系。我们在565名年轻成年人的4-特斯拉HARDI扫描上演示了我们的方法,以基于分数各向异性(FA)计算50个白质束的局部统计数据。实验结果表明,与基于区域的空间统计(TBSS)方法相比,确定对主要纤维区域的遗传影响的灵敏度更高。我们的结果表明,MDP表示揭示了白质结构的重要部分,并且与可比的纤维匹配方法相比,大大降低了尺寸。

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