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Segmentation of Cerebral MRI Scans Using a Partial Volume Model, Shading Correction, and an Anatomical Prior

机译:使用部分体积模型,阴影校正和解剖学进行脑MRI扫描的分割

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A mixture-model clustering algorithm is presented for robust MRI brain image segmentation in the presence of partial volume averaging. The method uses additional classes to represent partial volume voxels of mixed tissue type in the image. Probability distributions for partial volume voxels are modeled accordingly. The image model also allows for tissue-dependent variance values and voxel neighborhood information is taken into account in the clustering formulation. Additionally we extend the image model to account for a low frequency intensity inhomogeneity that may be present in an image. This so-called shading effect is modeled as a linear combination of polynomial basis functions, and is estimated within the clustering algorithm. We also investigate the possibility of using additional anatomical prior information obtained by registering tissue class template images to the image to be segmented. The final result is the estimated fractional amount of each tissue type present within a voxel in addition to the label assigned to the voxel. A parallel implementation of the method is evaluated using synthetic and real MRI data.
机译:在存在部分体积平均存在的鲁棒MRI脑图像分割中呈现了混合模型聚类算法。该方法使用附加类来表示图像中混合组织类型的部分体积体素。部分体积体素的概率分布相应地建模。图像模型还允许组织相关方差值,并且在聚类配方中考虑体琴邻居信息。另外,我们将图像模型扩展以解释可能存在于图像中的低频强度不均匀性。该所谓的阴影效果被建模为多项式基函数的线性组合,并在聚类算法内估计。我们还研究了使用通过将组织类模板图像注册到要分割的图像来获得的附加解剖现有信息的可能性。除了分配给体素的标签之外,最终结果是抑制体素内的每个组织类型的分数量。使用合成和实际MRI数据评估该方法的并行实现。

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