首页> 美国卫生研究院文献>Journal of Visualized Experiments : JoVE >Using Informational Connectivity to Measure the Synchronous Emergence of fMRI Multi-voxel Information Across Time
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Using Informational Connectivity to Measure the Synchronous Emergence of fMRI Multi-voxel Information Across Time

机译:使用信息连接性来测量跨时间fMRI多体素信息的同步出现

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摘要

It is now appreciated that condition-relevant information can be present within distributed patterns of functional magnetic resonance imaging (fMRI) brain activity, even for conditions with similar levels of univariate activation. Multi-voxel pattern (MVP) analysis has been used to decode this information with great success. FMRI investigators also often seek to understand how brain regions interact in interconnected networks, and use functional connectivity (FC) to identify regions that have correlated responses over time. Just as univariate analyses can be insensitive to information in MVPs, FC may not fully characterize the brain networks that process conditions with characteristic MVP signatures. The method described here, informational connectivity (IC), can identify regions with correlated changes in MVP-discriminability across time, revealing connectivity that is not accessible to FC. The method can be exploratory, using searchlights to identify seed-connected areas, or planned, between pre-selected regions-of-interest. The results can elucidate networks of regions that process MVP-related conditions, can breakdown MVPA searchlight maps into separate networks, or can be compared across tasks and patient groups.
机译:现在可以理解,即使对于具有相似单变量激活水平的疾病,在功能磁共振成像(fMRI)脑部活动的分布模式中也可以存在与疾病有关的信息。多体素模式(MVP)分析已被用来解码此信息,并获得了巨大的成功。 FMRI研究人员还经常寻求了解大脑区域在互连网络中如何相互作用,并使用功能连接性(FC)来识别随时间变化而具有相关响应的区域。正如单变量分析可能对MVP中的信息不敏感一样,FC可能无法完全表征处理具有MVP特征的条件的大脑网络。此处描述的方法,即信息连通性(IC),可以识别随时间变化的MVP可分辨性具有相关变化的区域,从而揭示FC无法访问的连通性。该方法可以是探索性的,可以使用探照灯识别与种子相关的区域,也可以在预先选择的感兴趣区域之间进行规划。结果可以阐明处理MVP相关疾病的区域网络,可以将MVPA探照灯地图分解成单独的网络,或者可以在任务和患者组之间进行比较。

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