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Regularization of DT-MRI Using 3D Median Filtering Methods

机译:使用3D中值过滤方法进行DT-MRI的正则化

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摘要

DT-MRI (diffusion tensor magnetic resonance imaging) tractography is a method to determine the architecture of axonal fibers in the central nervous system by computing the direction of the principal eigenvectors obtained from tensor matrix, which is different from the conventional isotropic MRI. Tractography based on DT-MRI is known to need many computations and is highly sensitive to noise. Hence, adequate regularization methods, such as image processing techniques, are in demand. Among many regularization methods we are interested in the median filtering method. In this paper, we extended two-dimensional median filters already developed to three-dimensional median filters. We compared four median filtering methods which are two-dimensional simple median method (SM2D), two-dimensional successive Fermat method (SF2D), three-dimensional simple median method (SM3D), and three-dimensional successive Fermat method (SF3D). Three kinds of synthetic data with different altitude angles from axial slices and one kind of human data from MR scanner are considered for numerical implementation by the four filtering methods.
机译:DT-MRI(扩散张量磁共振成像)牵引器是通过计算由张量基质获得的主要特征向量的方向来确定中枢神经系统中轴突纤维的结构的方法,这与传统的各向同性MRI不同。已知基于DT-MRI的牵引需要多个计算,对噪声非常敏感。因此,需要足够的正则化方法,例如图像处理技术。在许多正则化方法中,我们对中值过滤方法感兴趣。在本文中,我们扩展了已经发展到三维中值过滤器的二维中值过滤器。我们比较了四个中值滤波方法,这是二维简单中值方法(SM2D),二维连续的Fermat方法(SF2D),三维简单中值方法(SM3D)和三维连续的Fermat方法(SF3D)。通过四种过滤方法考虑来自轴向切片的三种具有不同高度角度的合成数据以及来自MR扫描仪的一种人类数据。通过四种过滤方法考虑数值实现。

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