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首页> 外文期刊>Medical image analysis >White matter fiber tract segmentation in DT-MRI using geometric flows.
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White matter fiber tract segmentation in DT-MRI using geometric flows.

机译:DT-MRI中使用几何流对白质纤维束进行分割。

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In this paper, we present a 3D geometric flow designed to segment the main core of fiber tracts in diffusion tensor magnetic resonance images. The fundamental assumption of our fiber segmentation technique is that adjacent voxels in a tract have similar properties of diffusion. The fiber segmentation is carried out with a front propagation algorithm constructed to fill the whole fiber tract. The front is a 3D surface that evolves with a propagation speed proportional to a measure indicating the similarity of diffusion between the tensors lying on the surface and their neighbors in the direction of propagation. We use a level set implementation to assure a stable and accurate evolution of the surface and to handle changes of topology of the surface during the evolution process. The fiber tract segmentation method does not need a regularized tensor field since the surface is automatically smoothed as it propagates. The smoothing is done by an intrinsic surface force, based on the minimal principal curvature. This segmentation can be used for obtaining quantitative measures of the diffusion in the fiber tracts and it can also be used for white matter registration and for surgical planning.
机译:在本文中,我们提出了一种3D几何流,该几何流旨在在扩散张量磁共振图像中分割纤维束的主要核心。我们的纤维分割技术的基本假设是,一个区域中的相邻体素具有相似的扩散特性。光纤分割是使用构造为填充整个光纤束的前端传播算法进行的。正面是3D表面,其传播速度与表示在表面上的张量及其相邻张量在传播方向上的相似度之间的相似度的量度成比例地发展。我们使用一个级别集实现来确保表面的稳定和准确演化,并在演化过程中处理表面拓扑的变化。纤维束分割方法不需要规则的张量场,因为表面在传播时会自动平滑。基于最小主曲率,通过固有表面力完成平滑。这种分割可用于获得纤维束中扩散的定量测量,也可用于白质配准和外科手术计划。

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