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Task-residual functional connectivity of language and attention networks

机译:语言和注意力网络的任务残留功能连接

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摘要

Functional connectivity using task-residual data capitalizes on remaining variance after mean task-related signal is removed from a time series. The degree of network specificity in language and attention domains featured by task-residual and resting-state data types were compared. Functional connectivity based on task-residual data evidenced stronger laterality of the language and attention connections and thus greater network specificity compared to resting-state functional connectivity of the same connections. Covariance between network nodes of task-residuals may thus reflect the degree to which two regions are coordinated in their specific activity, rather than a general shared co-activation. Task-residual functional connectivity provides complementary data to that of resting-state, emphasizing network relationships during task engagement.
机译:使用任务残差数据进行功能连接可以利用从时间序列中删除与任务相关的平均信号后的剩余差异。比较了以任务残差和静止状态数据类型为特征的语言和注意域中网络的特定程度。与相同连接的静止状态功能连接相比,基于任务残差数据的功能连接证明了语言和注意连接的横向性更强,因此网络专用性更高。因此,任务残差的网络节点之间的协方差可以反映两个区域在其特定活动中的协调程度,而不是一般的共享共激活。任务残留功能连接提供了与静止状态互补的数据,强调了任务参与期间的网络关系。

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