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Labeling white matter tracts in hardi by fusing multiple tract atlases with applications to genetics

机译:通过将多个传道的外壳与遗传学应用融合,在Hardi中标记白质龟

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Accurate identification of white matter structures and segmentation of fibers into tracts is important in neuroimaging and has many potential applications. Even so, it is not trivial because whole brain tractography generates hundreds of thousands of streamlines that include many false positive fibers. We developed and tested an automatic tract labeling algorithm to segment anatomically meaningful tracts from diffusion weighted images. Our multi-atlas method incorporates information from multiple hand-labeled fiber tract atlases. In validations, we showed that the method outperformed the standard ROI-based labeling using a deformable, parcellated atlas. Finally, we show a high-throughput application of the method to genetic population studies. We use the sub-voxel diffusion information from fibers in the clustered tracts based on 105-gradient HARDI scans of 86 young normal twins. The whole workflow shows promise for larger population studies in the future.
机译:准确地识别白质结构和纤维的分段对椎间的准确识别在神经影像中是重要的,并且具有许多潜在的应用。即便如此,它也不是琐碎的,因为整个脑牵引产生了数十万的简化,包括许多假阳性纤维。我们开发并测试了一种自动道标记算法,以从扩散加权图像分段划分解剖学有意义的暗影。我们的多atlas方法包含来自多个手标纤维纤维atlases的信息。在验证中,我们表明该方法使用可变形的包裹的地图而表现出标准的ROI基标记。最后,我们展示了遗传群体研究方法的高通量应用。我们根据86个年轻正常双胞胎的105梯度硬质扫描,使用聚集的毛面中的纤维中的子体素扩散信息。整个工作流程显示未来更大的人口研究。

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