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ESTIMATING COGNITIVE STATE USING EEG SIGNALS

机译:使用脑电信号估计认知状态

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摘要

Using EEG signals to estimate cognitive state has drawn increasing attention in recently years, especially in the context of brain-computer interface (BCI) design. However, this goal is extremely difficult because, in addition to the complex relationships between the cognitive state and EEG signals that yields the non-stationarity of the features extracted from EEG signals, there are artefacts introduced by eye blinks and head and body motion. In this paper, we present a classification system, which can estimate the subject's cognitive state from the measured EEG signals. In the proposed system, a mutual information based method is employed to reduce the dimensionality of the features as well as to increase the robustness of the system. A committee of three classifiers was implemented and the majority voting results of the committee are taken to be the final decisions. The results of a preliminary test with data from freely moving subjects performing various tasks as opposed to the strictly controlled experimental set-ups of BCI provide strong support for this approach.
机译:近年来,使用EEG信号估计认知状态已引起越来越多的关注,尤其是在脑机接口(BCI)设计的背景下。但是,这个目标非常困难,因为除了认知状态和EEG信号之间的复杂关系(会导致从EEG信号中提取的特征不稳定)之外,还有眨眼,头部和身体运动引起的假象。在本文中,我们提出了一个分类系统,该系统可以从测得的脑电信号估计受试者的认知状态。在提出的系统中,采用了一种基于互信息的方法来减少特征的维数并增加系统的鲁棒性。实施了一个由三个分类器组成的委员会,该委员会的多数表决结果作为最终决定。初步测试的结果来自自由移动的受试者执行各种任务的数据,而不是严格控制的BCI实验设置,为这种方法提供了有力的支持。

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