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Mental Workload Classification Method Based on EEG Independent Component Features

机译:基于EEG独立组件功能的心理工作负载分类方法

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摘要

Excessive mental workload will reduce work efficiency, but low mental workload will cause a waste of human resources. It is very significant to study the mental workload status of operators. The existing mental workload classification method is based on electroencephalogram (EEG) features, and its classification accuracy is often low because the channel signals recorded by the EEG electrodes are a group of mixed brain signals, which are similar to multi-source mixed speech signals. It is not wise to directly analyze the mixed signals in order to distinguish the feature of EEG signals. In this study, we propose a mental workload classification method based on EEG independent components (ICs) features, which borrows from the blind source separation (BSS) idea of mixed speech signals. This presented method uses independent component analysis (ICA) to obtain pure signals, i.e., ICs. The energy features of ICs are directly extracted for classifying the mental workload, since this method directly uses ICs energy features for feature extraction. Compared with the existing solution, the proposed method can obtain better classification results. The presented method might provide a way to realize a fast, accurate, and automatic mental workload classification.
机译:精神上的工作量过多会降低工作效率,但低心理工作量将浪费人力资源。研究运营商的心理工作量状态非常重要。现有的心理工作负载分类方法基于脑电图(EEG)特征,并且其分类精度通常很低,因为由EEG电极记录的信道信号是一组混合脑信号,其类似于多源混合语音信号。直接分析混合信号以区分EEG信号的特征是不明智的。在这项研究中,我们提出了一种基于EEG独立组件(ICS)特征的心理工作负载分类方法,该方法从混合语音信号的盲源分离(BSS)概念借用。该呈现的方法使用独立的分量分析(ICA)来获得纯信号,即IC。 IC的能量特征直接提取用于对心理工作量进行分类,因为此方法直接使用ICS Energy功能进行特征提取。与现有解决方案相比,所提出的方法可以获得更好的分类结果。呈现的方法可以提供一种方法来实现快速,准确,自动的心理工作负载分类。

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