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Hierarchical and graphical analysis of fMRI network connectivity in healthy and schizophrenic groups

机译:健康精神分裂组中FMRI网络连接的分层与图形分析

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Understanding the changes or disruption in the connectivity among brain networks is important for identifying potential biological markers for neuropsychiatric diseases. Multivariate and data-driven methods, especially independent component analysis (ICA), have proven to be a powerful tool in this field. Here, we introduce a novel analysis scheme that incorporates hierarchical and graphical techniques to study the connectivity differences between healthy controls and schizophrenia patients, using the spatial dependence among ICA components as an index of network connectivity. We find that compared to healthy controls, the schizophrenic group presents an altered hierarchy with a number of unusual connections and a significantly decreased small-world index, suggesting disease-related changes in the organization of brain connectivity.
机译:了解脑网络之间连通性的变化或破坏对于鉴定神经精神疾病的潜在生物学标志来说是重要的。 多变量和数据驱动的方法,特别是独立的分析分析(ICA),已被证明是该领域的强大工具。 在这里,我们介绍了一种新的分析方案,该方案包含分层和图形技术,以研究健康对照和精神分裂症患者之间的连接差异,使用ICA组件之间的空间依赖性作为网络连接指标。 我们发现与健康对照相比,精神分裂症组呈现出改变的层次结构,具有许多异常联系和显着降低的小世界指数,表明组织脑连接的疾病相关变化。

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