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Comparative analysis of cognitive tasks for modeling mental workload with electroencephalogram

机译:用脑电图模拟脑力负荷的认知任务比较分析

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Previous electroencephalogram (EEG) studies have shown that cognitive workload can be estimated by using several types of cognitive tasks. In this study, we attempted to characterize cognitive tasks that have been used to manipulate workload for generating classification models. We carried out a comparative analysis between two representative types of working memory tasks: the n-back task and the mental arithmetic task. Based on experiments with 7 healthy subjects using Emotiv EPOC, we compared the consistency, robustness, and efficiency of each task in determining cognitive workload in a short training session. The mental arithmetic task seems consistent and robust in manipulating clearly separable high and low levels of cognitive workload with less training. In addition, the mental arithmetic task shows consistency despite repeated usage over time and without notable task adaptation in users. The current study successfully quantifies the quality and efficiency of cognitive workload modeling depending on the type and configuration of training tasks.
机译:先前的脑电图(EEG)研究表明,可以通过使用几种类型的认知任务来估计认知工作量。在这项研究中,我们试图表征认知任务,这些认知任务已被用来操纵工作量以生成分类模型。我们对两种典型的工作记忆任务类型进行了比较分析:n-back任务和心理算术任务。基于使用Emotiv EPOC对7名健康受试者的实验,我们在短期培训中比较了每个任务在确定认知工作量方面的一致性,鲁棒性和效率。心理算术任务似乎是一致且健壮的,可以通过较少的训练来处理明显可分离的高和低水平的认知工作量。另外,尽管随着时间的反复使用,心算任务仍显示出一致性,并且用户中的任务适应性并不明显。当前的研究成功地根据训练任务的类型和配置量化了认知工作量建模的质量和效率。

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