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Entropy-based multichannel measure of stationarity for characterization of motor imagery patterns

机译:基于熵的平稳性多通道测度,用于表征运动图像模式

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We propose a novel approach for measuring the stationarity level of multichannel time-series. This measure is based on stationarity definition over time-varying spectra and aims to quantify the relationship between local (single-channel dynamics) and global (multichannel dynamics) stationarity. With the purpose of separate among several motor/imagery tasks, we asssume that movement imagination implies an increase on the EEG variability, consequently, as discriminant features, we first compute the non-stationary components of input signals, and we further obtain its stationary level throughout the proposed measure. To assess the separability level of the proposed features, we employ the t-student test. Obtained results evidence that our measure is able to accurately detect brain areas projected on the scalp where motor tasks are performed.
机译:我们提出了一种新颖的方法来测量多通道时间序列的平稳性水平。此措施基于时变频谱上的平稳性定义,旨在量化局部(单通道动态)和全局(多通道动态)平稳性之间的关系。为了将几个运动/图像任务分开,我们假设运动想象力暗示着脑电图变异性的增加,因此,作为判别特征,我们首先计算输入信号的非平稳分量,然后进一步获得其平稳水平在整个拟议措施中。为了评估所提出功能的可分离性水平,我们采用了t型学生测试。获得的结果证明,我们的措施能够准确检测投射在执行运动任务的头皮上的大脑区域。

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