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Analysis of Regularity in the EEG Before/After Working Memory Task

机译:在工作记忆任务之前/后脑电图中的规律性分析

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In this paper, we want to test regularity changes in working memory (WM) task with respect to the baseline activity in electroencephalogram (EEG) signals. For this purpose, we used non-linear analysis. The EEG signals were analyzed using three nonlinear measures: approximate entropy (ApEn), permutation entropy (PE) and wavelet entropy. Statistical Wilcoxon exam and Davis-Bouldian criterion is used to select optimal discriminative features. We concluded that the values of the all measures acquired from the frontal and occipital lobes increase during WM task, indicating less regularity and predictability in EEG signals. Among these features, the PE significantly increases in frontal lobes. We suggest this feature in memory-based neurofeedback system to improve memory performance.
机译:在本文中,我们希望在脑电图(EEG)信号中的基线活动中测试工作存储器(WM)任务中的规则性变化。为此目的,我们使用非线性分析。使用三个非线性测量分析EEG信号:近似熵(APEN),置换熵(PE)和小波熵。统计Wilcoxon考试和Davis-Bouldian标准用于选择最佳辨别特征。我们得出结论,在WM任务期间,从正面和枕叶中获得的所有措施的价值观增加,表明EEG信号中的规律性和可预测性。在这些特征中,PE在正面凸起中显着增加。我们建议在基于内存的神经反馈系统中的此功能,以提高内存性能。

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