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Accurate Anisotropic Fast Marching for Diffusion-Based Geodesic Tractography

机译:基于扩散的测地线学的精确各向异性快速行进

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摘要

Using geodesics for inferring white matter fibre tracts from diffusion-weighted MR data is an attractive method for at least two reasons: (i) the method optimises a global criterion, and hence is less sensitive to local perturbations such as noise or partial volume effects, and (ii) the method is fast, allowing to infer on a large number of connexions in a reasonable computational time. Here, we propose an improved fast marching algorithm to infer on geodesic paths. Specifically, this procedure is designed to achieve accurate front propagation in an anisotropic elliptic medium, such as DTI data. We evaluate the numerical performance of this approach on simulated datasets, as well as its robustness to local perturbation induced by fiber crossing. On real data, we demonstrate the feasibility of extracting geodesics to connect an extended set of brain regions.
机译:至少有两个原因,使用测地线从扩散加权MR数据中推断白质纤维束是一种有吸引力的方法:(i)该方法优化了全局准则,因此对局部扰动(例如噪声或部分体积效应)较不敏感, (ii)该方法快速,允许在合理的计算时间内推断出大量的连接。在这里,我们提出了一种改进的快速行进算法来推断测地路径。具体而言,此过程旨在在各向异性椭圆形介质(例如DTI数据)中实现精确的前向传播。我们评估了这种方法在模拟数据集上的数值性能,以及它对由光纤交叉引起的局部扰动的鲁棒性。在真实数据上,我们证明了提取测地线以连接扩展的大脑区域集的可行性。

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