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Integrated Parcellation and Normalization Using DTI Fasciculography

机译:使用DTI显微镜进行集成的碎片化和归一化

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摘要

Existing methods for fiber tracking, interactive bundling and editing from Diffusion Magnetic Resonance Images (DMRI) reconstruct white matter fascicles using groups of virtual pathways. Classical numerical fibers suffer from image noise and cumulative tracking errors. 3D visualization of bundles of fibers reveals structural connectivity of the brain; however, extensive human intervention, tracking variations and errors in fiber sampling make quantitative fascicle comparison difficult. To simplify the process and offer standardized white matter samples for analysis, we propose a new integrated fascicle parcellation and normalization method that combines a generic parametrized volumetric tract model with orientation information from diffusion images. The new technique offers a tract-derived spatial parameter for each voxel within the model. Cross-subject statistics of tract data can be compared easily based on these parameters. Our implementation demonstrated interactive speed and is available to the public in a packaged application.
机译:现有的通过扩散磁共振图像(DMRI)进行纤维跟踪,交互式捆绑和编辑的方法使用虚拟路径组来重建白质纤维束。经典的数值光纤会遭受图像噪声和累积跟踪误差的困扰。纤维束的3D可视化揭示了大脑的结构连通性;但是,由于人为干预,在纤维采样中跟踪变化和误差,使得定量纤维束比较变得困难。为了简化过程并提供标准化的白质样品进行分析,我们提出了一种新的集成式分片法和归一化方法,该方法将通用的参数化体积线模型与来自扩散图像的方向信息相结合。这项新技术为模型中的每个体素提供了一个基于道的空间参数。基于这些参数,可以轻松比较域数据的跨主题统计信息。我们的实现展示了交互式的速度,并且在打包的应用程序中可供公众使用。

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