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Cortical surface parcellation based on intra-subject white matter fiber clustering

机译:基于受试者内白质纤维聚类的皮质表面剥离

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We present a hybrid method that performs the complete parcellation of the cerebral cortex of an individual, based on the connectivity information of the white matter fibers from a whole-brain tractography dataset. The method consists of five steps, first intra-subject clustering is performed on the brain tractography. The fibers that make up each cluster are then intersected with the cortical mesh and then filtered to discard outliers. In addition, the method resolves the overlapping between the different intersection regions (sub-parcels) through-out the cortex efficiently. Finally, a post-processing is done to achieve more uniform sub-parcels. The output is the complete labeling of cortical mesh vertices, representing the different cortex sub-parcels, with strong connections to other sub-parcels. We evaluated our method with measures of brain connectivity such as functional segregation (clustering coefficient), functional integration (characteristic path length) and small-world. Results in five subjects from ARCHI database show a good individual cortical parcellation for each one, composed of about 200 sub-parcels per hemisphere and complying with these connectivity measures.
机译:我们提出了一种混合方法,可根据来自全脑tractography数据集的白质纤维的连接性信息,对个体的大脑皮层进行完全分割。该方法包括五个步骤,首先在脑束上进行受试者内部聚类。然后,将组成每个簇的纤维与皮质网格相交,然后过滤以丢弃异常值。另外,该方法有效地解决了整个皮质中不同相交区域(子宗地)之间的重叠。最后,进行后处理以实现更统一的子宗地。输出是皮质网格顶点的完整标签,代表不同的皮质子区域,并且与其他子区域具有牢固的连接。我们评估了我们大脑的连通性,例如功能隔离(聚类系数),功能集成(特征路径长度)和小世界。 ARCHI数据库中五个主题的结果显示,每个主题的皮质分隔都很好,每个半球包含约200个子包裹,并符合这些连通性措施。

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