首页> 外文会议>2011 8th IEEE International Symposium on Biomedical Imaging: From Nano to Macro >Extracting geometrical features peak fractional anisotropy from the ODF for white matter characterization
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Extracting geometrical features peak fractional anisotropy from the ODF for white matter characterization

机译:从ODF提取几何特征和峰分数各向异性以表征白质

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Spherical Functions (SF) play a pivotal role in Diffusion MRI (dMRI) in representing sub-voxel-resolution micro-architectural information of the underlying tissue. This information is encoded in the geometric shape of the SF. In this paper we use a polynomial approach to extract geometric characteristics from SFs in dMRI such as the maxima, minima and saddle-points. We then use differential geometric tools to quantify further details such as principal curvatures at the extrema. Finally we propose new scalar measures like the Peak Fractional Anisotropy (PFA) and Total-PFA, to represent this rich source of information for characterizing white-matter (WM) fibers. As an example we illustrate our method on the Orientation Distribution Function (ODF) estimated from real data.
机译:球形功能(SF)在弥散MRI(dMRI)中代表底层组织的亚体素分辨率微体系结构信息起着关键作用。该信息以SF的几何形状编码。在本文中,我们使用多项式方法从dMRI的SF中提取几何特征,例如最大值,最小值和鞍点。然后,我们使用微分几何工具量化进一步的细节,例如极值处的主曲率。最后,我们提出了新的标量度量,例如峰分数各向异性(PFA)和Total-PFA,以表示表征白质(WM)光纤的丰富信息来源。作为示例,我们说明了根据真实数据估算的方向分布函数(ODF)的方法。

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