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Group analyses of connectivity-based cortical parcellation using repeated k-means clustering.

机译:使用重复k均值聚类对基于连接性的皮质细胞分裂进行分组分析。

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摘要

K-means clustering has become a popular tool for connectivity-based cortical segmentation using Diffusion Weighted Imaging (DWI) data. A sometimes ignored issue is, however, that the output of the algorithm depends on the initial placement of starting points, and that different sets of starting points therefore could lead to different solutions. In this study we explore this issue. We apply k-means clustering a thousand times to the same DWI dataset collected in 10 individuals to segment two brain regions: the SMA-preSMA on the medial wall, and the insula. At the level of single subjects, we found that in both brain regions, repeatedly applying k-means indeed often leads to a variety of rather different cortical based parcellations. By assessing the similarity and frequency of these different solutions, we show that approximately 256 k-means repetitions are needed to accurately estimate the distribution of possible solutions. Using nonparametric group statistics, we then propose a method to employ the variability of clustering solutions to assess the reliability with which certain voxels can be attributed to a particular cluster. In addition, we show that the proportion of voxels that can be attributed significantly to either cluster in the SMA and preSMA is relatively higher than in the insula and discuss how this difference may relate to differences in the anatomy of these regions.
机译:K-均值聚类已成为使用扩散加权成像(DWI)数据进行基于连接的皮层分割的流行工具。但是,有时会忽略的一个问题是,算法的输出取决于起点的初始位置,因此,不同的起点集可能导致不同的解决方案。在这项研究中,我们探讨了这个问题。我们将k均值聚类一千次,将其收集到10个个体中收集的同一DWI数据集,以分割两个大脑区域:内侧壁上的SMA-preSMA和绝缘体。在单个受试者的水平上,我们发现在两个大脑区域中,重复应用k均值确实经常会导致多种相当不同的基于皮质的细胞分裂。通过评估这些不同解决方案的相似性和频率,我们表明大约需要256 k均值重复才能准确估计可能解决方案的分布。然后,使用非参数组统计信息,我们提出了一种利用聚类解决方案的可变性来评估将某些体素归因于特定聚类的可靠性的方法。此外,我们显示可以明显归因于SMA和preSMA中任一簇的体素比例相对高于岛状,并讨论了这种差异如何与这些区域的解剖结构相关。

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