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DT-MRI denoising and neuronal fiber tracking.

机译:DT-MRI去噪和神经纤维追踪。

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Diffusion tensor imaging can provide the fundamental information required for viewing structural connectivity. However, robust and accurate acquisition and processing algorithms are needed to accurately map the nerve connectivity. In this paper, we present a novel algorithm for extracting and visualizing the fiber tracts in the CNS, specifically in the brain. The automatic fiber tract mapping problem will be solved in two phases, namely a data smoothing phase and a fiber tract mapping phase. In the former, smoothing of the diffusion-weighted data (prior to tensor calculation) is achieved via a weighted TV-norm minimization, which strives to smooth while retaining all relevant detail. For the fiber tract mapping, a smooth 3D vector field indicating the dominant anisotropic direction at each spatial location is computed from the smoothed data. Neuronal fibers are then traced by calculating the integral curves of this vector field. Results are expressed using three modes of visualization: (1) Line integral convolution produces an oriented texture which shows fiber pathways in a planar slice of the data. (2) A streamtube map is generated to present a 3D view of fiber tracts. Additional information, such as degree of anisotropy, can be encoded in the tube radius, or by using color. (3) A particle system form of visualization is also presented. This mode of display allows for interactive exploration of fiber connectivity with no additional preprocessing.
机译:扩散张量成像可以提供查看结构连通性所需的基本信息。但是,需要鲁棒且准确的采集和处理算法来准确映射神经连接。在本文中,我们提出了一种新颖的算法,用于提取和可视化CNS中的纤维束,特别是在大脑中。自动纤维束映射问题将分两个阶段解决,即数据平滑阶段和纤维束映射阶段。在前一种方法中,扩散加权数据(在张量计算之前)的平滑是通过加权TV范数最小化实现的,该方法在保持所有相关细节的同时进行平滑。对于光纤束映射,从平滑数据计算出指示每个空间位置处的主要各向异性方向的平滑3D矢量场。然后通过计算该矢量场的积分曲线来跟踪神经元纤维。使用三种可视化模式表示结果:(1)线积分卷积产生定向纹理,该纹理在数据的平面切片中显示纤维路径。 (2)生成流管图以呈现纤维束的3D视图。可以在管半径中或通过使用颜色来编码其他信息,例如各向异性程度。 (3)还提出了可视化的粒子系统形式。这种显示模式允许交互式探索光纤连接,而无需其他预处理。

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