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Assessing a learning process with functional ANOVA estimators of EEG power spectral densities

机译:使用脑电功率谱密度的函数ANOVA估计器评估学习过程

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摘要

We propose to assess the process of learning a task using electroencephalographic (EEG) measurements. In particular, we quantify changes in brain activity associated to the progression of the learning experience through the functional analysis-of-variances (FANOVA) estimators of the EEG power spectral density (PSD). Such functional estimators provide a sense of the effect of training in the EEG dynamics. For that purpose, we implemented an experiment to monitor the process of learning to type using the Colemak keyboard layout during a twelve-lessons training. Hence, our aim is to identify statistically significant changes in PSD of various EEG rhythms at different stages and difficulty levels of the learning process. Those changes are taken into account only when a probabilistic measure of the cognitive state ensures the high engagement of the volunteer to the training. Based on this, a series of statistical tests are performed in order to determine the personalized frequencies and sensors at which changes in PSD occur, then the FANOVA estimates are computed and analyzed. Our experimental results showed a significant decrease in the power of β and γ rhythms for ten volunteers during the learning process, and such decrease happens regardless of the difficulty of the lesson. These results are in agreement with previous reports of changes in PSD being associated to feature binding and memory encoding.
机译:我们建议使用脑电图(EEG)测量评估学习任务的过程。尤其是,我们通过EEG功率谱密度(PSD)的方差分析(FANOVA)估计器来量化与学习经历的进展相关的大脑活动的变化。这样的功能估计器提供了对脑电动力学中训练效果的感觉。为此,我们实施了一个实验,以在十二课培训中监视使用Colemak键盘布局进行打字学习的过程。因此,我们的目的是确定在学习过程的不同阶段和难度水平下,各种EEG节律的PSD的统计学显着变化。仅当概率的认知状态测量值确保志愿者高度参与培训时,才考虑这些变化。基于此,执行一系列统计测试,以确定PSD发生变化的个性化频率和传感器,然后计算和分析FANOVA估计值。我们的实验结果表明,在学习过程中,十名志愿者的β和γ节律的力量显着降低,并且这种降低的发生与课程的难度无关。这些结果与先前将PSD更改与特征绑定和内存编码相关的报告相一致。

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