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Identification of MEG-related brain dynamics induced by a yogic breathing technique

机译:鉴定瑜伽呼吸技术诱发的与MEG相关的脑动力学

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The automatic detection of various differences in brain dynamics has been studied here using two approaches, nonlinear time series analysis, and the clustering method. Six data sets of whole-head 148 channel MEG activity were collected from a single subject performing a yogic breathing protocol in three two-day experiments repeated with a time lag of one month. The MEG signals have been analyzed by evaluating five nonlinear indicators, two statistical measures and the power for each minute. The trends of eight parameters in time and space have been used in an effort to explore the classification schemes using Growing Hierarchical Self Organizing Maps. The results show the utility of this approach for distinguishing the different phases of the yogic breathing protocol and for observing brain activity changes at successive months.
机译:这里已经使用两种方法研究了自动检测大脑动力学的各种差异,这两种方法是非线性时间序列分析和聚类方法。在三个为期两天的实验中,从一个执行瑜伽呼吸方案的受试者中,收集了六个全头148通道MEG数据集,时间间隔为一个月。通过评估五个非线性指标,两个统计量度和每分钟的功率,对MEG信号进行了分析。已使用时间和空间上的八个参数的趋势来尝试使用“增长的层次自组织映射”来探索分类方案。结果表明,该方法可用于区分瑜伽呼吸方案的不同阶段以及观察连续几个月的大脑活动变化。

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