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White Matter Tractographies Registration Using Gaussian Mixture Modeling

机译:使用高斯混合建模的白质令左右

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This paper proposes a novel and robust approach to the registration (matching) of intra-subject white matter (WM) fiber sets extracted from DT-MRI scans by Tractography. For each fiber, a feature space representation is obtained by appending the sequence of its 3D coordinates. Clustering by non-parametric adaptive mean shift provides a representative fiber for each cluster hereafter termed the fiber-mode (FM). For each FM, the parameters of a multivariate Gaussian are computed from its fiber population, leading to a mixture of Gaussians (MoG) for the whole fiber set. The number of Gaussians used for a fiber set equals the number of FM representing the set. The alignment of two fiber sets is then treated as the alignment between two MoGs, and is solved by maximizing the correlation ratio between them. Initial results are presented for real intrasubject fiber sets and synthetic transformations.
机译:本文提出了通过牵引术中从DT-MRI扫描中提取的对象白质(WM)纤维组的注册(匹配)的新颖和鲁棒方法。对于每个光纤,通过附加其3D坐标的序列来获得特征空间表示。通过非参数自适应均值的聚类为下文的每个簇提供了代表性光纤,其被称为光纤模式(FM)。对于每个FM,多变量高斯的参数从其光纤群计算,导致整个光纤集合的高斯(MOG)的混合。用于光纤集的高斯人数等于表示集合的FM的数量。然后将两个纤维组的对准作为两个摩晖之间的对准,并且通过最大化它们之间的相关比来解决。呈现初始结果,用于真正的intrAsbject光纤组和合成转换。

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