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EEG Brain Functional Connectivity Dynamic Evolution Model: A Study via Wavelet Coherence

机译:EEG脑功能连通性动态演进模型:通过小波相干性研究

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Estimating the functional interactions and connections between brain regions to corresponding process in cognitive, behavioral and psychiatric domains are central pursuits for understanding the human connectome. Few studies have examined the effects of dynamic evolution on cognitive processing and brain activation using wavelet coherence in scalp electroencephalography (EEG) data. Aim of this study was to investigate the brain functional connectivity and dynamic programming model based on the wavelet coherence from EEG data and to evaluate a possible correlation between the brain connectivity architecture and cognitive evolution processing. Here, We present an accelerated dynamic programing algorithm that we found that spatially distributed regions coherence connection difference, for variation audio stimulation, dynamic programing model give the dynamic evolution processing in difference time and frequency. Such methodologies will be suitable for capturing the dynamic evolution of the time varying connectivity patterns that reflect certain cognitive tasks or brain pathologies.
机译:估算脑区域之间的功能性相互作用和连接到在认知,行为和精神域对应过程对于理解人类连接组中央追求。很少有研究探讨动态演化的认知加工和脑激活使用头皮脑电图(EEG)数据小波相干的影响。这项研究的目的是调查基于脑电从数据小波相干大脑功能连通性和动态规划模型,并评估脑连通架构和认知进化处理之间可能存在的相关性。在这里,我们提出了一个加速的动态编程算法我们发现,空间分布区域相干连接的差异,对于变化的音频刺激,动态规划模型给出的动态演变处理差异的时间和频率。这种方法将适用于捕捉反映某些认知任务或脑部病变时变连接模式的动态演化。

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