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Mutually temporally independent connectivity patterns: A new framework to study the dynamics of brain connectivity at rest with application to explain group difference based on gender

机译:时间上相互独立的连接模式:研究静止状态下脑部连接动态的新框架,并根据性别解释群体差异

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Functional connectivity analysis of the human brain is an active area in fMRI research. It focuses on identifying meaningful brain networks that have coherent activity either during a task or in the resting state. These networks are generally identified either as collections of voxels whose time series correlate strongly with a pre-selected region or voxel, or using data-driven methodologies such as independent component analysis (ICA) that compute sets of maximally spatially independent voxel weightings (component spatial maps (SMs)), each associated with a single time course (TC). Studies have shown that regardless of the way these networks are defined, the activity coherence among them has a dynamic nature which is hard to estimate with global coherence analysis such as correlation or mutual information. Sliding window analyses in which functional network connectivity (FNC) is estimated separately at each time window is one of the more widely employed approaches to studying the dynamic nature of functional network connectivity (dFNC). Observed FNC patterns are summarized and replaced with a smaller set of prototype connectivity patterns ("states" or "components"), and then a dynamical analysis is applied to the resulting sequences of prototype states.
机译:人脑的功能连接性分析是功能磁共振成像研究的活跃领域。它着重于识别有意义的大脑网络,这些大脑网络在任务期间或静止状态下均具有一致的活动。这些网络通常被标识为时间序列与预选区域或体素紧密相关的体素集合,或者使用数据驱动方法,例如独立分量分析(ICA),可计算最大空间独立的体素权重集(分量空间)地图(SM)),每个地图都与单个时程(TC)相关联。研究表明,不管定义这些网络的方式如何,它们之间的活动一致性都具有动态性质,很难通过诸如相关性或互信息之类的全局一致性分析来估计。滑动窗口分析(其中每个时间窗口分别估算功能网络连接性(FNC))是研究功能网络连接性(dFNC)的动态特性的更广泛采用的方法之一。汇总观察到的FNC模式,并用较小的一组原型连接模式(“状态”或“组件”)替换,然后对所得的原型状态序列进行动态分析。

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