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Modelling noise-induced fibre-orientation error in diffusion-tensor MRI

机译:在扩散张量MRI中模拟噪声引起的纤维取向误差

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Diffusion-tensor MRI can be used to measure fibre orientation within the brain. Several studies have proposed methods to reconstruct known white matter fibre tracts in the brain. These methods are known as tractography. However, the measured fibre orientations are subject to error, which leads tractography methods to fail or define false connections. Probabilistic tractography methods use a model of the probability density function (PDF) of the local fibre orientation in each voxel, to calculate the likelihood of any potential fibre pathway through a DT data set. We propose the Watson distribution as a new fibre orientation PDF to replace ad hoc models used previously. We compare the probabilistic index of connectivity (PICo) tractography method using three candidate PDFs and show that the Watson PDF compares favourably to the ad hoc models.
机译:扩散张量MRI可用于测量大脑内的纤维方向。一些研究提出了重建大脑中已知的白质纤维束的方法。这些方法被称为tractography。然而,所测得的纤维取向容易出错,从而导致束线照相法失效或定义错误的连接。概率束摄影法使用每个体素中局部纤维取向的概率密度函数(PDF)模型来计算通过DT数据集的任何潜在纤维路径的可能性。我们建议将Watson分布作为一种新的纤维取向PDF替换以前使用的临时模型。我们比较了使用三个候选PDF的概率连通性(PICo)体检方法的概率指标,并表明Watson PDF与临时模型相比具有优势。

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