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On the Analysis of EEG Features for Mental Workload Assessment During Physical Activity

机译:体育活动中心理负荷评估的脑电特征分析

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Assessment of mental workload is crucial for applications which require constant attention and where conditions such as mental fatigue and drowsiness must be avoided. As such, electroencephalography (EEG) based mental workload models have been developed in the past. The majority of these models, however, have assumed individuals are not ambulant, thus bypassing the issue of movement-related EEG artefacts. While such models may be useful for a number of applications (e.g., operators are sitting), they may not apply in situations in which operators are performing their task under different physical activity levels. Representative examples can include first responders, such as paramedics, firefighters, or police officers. In this work, we take the first steps towards overcoming this limitation and present results of an experiment simultaneously eliciting increasing mental workload states at varying physical activity levels. EEG data from forty-seven participants was collected while they performed the NASA Revised Multi-Attribute Task Battery II (MATB-II) under three different activity level conditions (no, medium, high). In this study, we report the effects of activity on the noise-robustness and distribution of several spectral, amplitude/phase coherence, and amplitude modulation features, with the ultimate goal of deriving a feature set tailored towards automated workload assessment during physical activity. Preliminary results show spectral features acquired from the frontal area of the cortex as the most promising and that activity aware mental workload models should be developed.
机译:对于需要不断关注的应用以及必须避免诸如精神疲劳和嗜睡之类的应用,对精神工作量的评估至关重要。因此,过去已经开发了基于脑电图(EEG)的心理工作量模型。但是,这些模型中的大多数都假定个人不是救护车,因此绕过了与运动有关的脑电假象的问题。尽管这样的模型对于许多应用可能是有用的(例如,操作员坐着),但是它们可能不适用于操作员在不同身体活动水平下执行其任务的情况。代表性示例可以包括急救人员,例如医护人员,消防员或警务人员。在这项工作中,我们迈出了克服这一局限性的第一步,并提出了一项实验结果,同时在不同的体育活动水平下引发了越来越多的精神工作量状态。在三项不同活动水平条件(无,中,高)下执行NASA修订的多属性任务电池II(MATB-II)时,收集了47位参与者的EEG数据。在这项研究中,我们报告了活动对几种频谱,幅度/相位相干性和幅度调制特征的噪声鲁棒性和分布的影响,其最终目标是获得针对身体活动期间自动工作量评估量身定制的特征集。初步结果表明,从皮质额叶区域获得的光谱特征是最有前途的,应开发出具有活动意识的精神工作量模型。

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