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A noninvasive real-time driving fatigue detection technology based on left prefrontal Attention and Meditation EEG

机译:基于左前额相关注和冥想脑电图的非侵入式实时驾驶疲劳检测技术

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Driving fatigue has been considered as a significant risk factor in transportation accidents, and the development of the human cognitive state based on electroencephalogram (EEG) has become a major focus in the field of driving safety. However, it faces portable and real-time problems on its practical application. This study uses MindWave to collect the Attention and Meditation EEG from the left prefrontal lobe of the subject, and uses the relation between Attention and Meditation EEG when the subject is in the state of concentration, relaxation, fatigue and sleep being measured first. As a result, a new method for driving fatigue detection based on the correlation coefficient between drivers Attention and Meditation EEG is proposed. Meanwhile, the k-Nearest Neighbors (k-NN) algorithm is introduced to classify the correlation coefficient between the drivers Attention and Meditation EEG, so as to detect driving fatigue and alert. Lastly, the software running on an Android smart device is developed based on the above technologies, and the experiment proves that it has noninvasive and real-time advantages, while its sensitivity and specificity are 68.31% and 90.43% respectively.
机译:驾驶疲劳被认为是运输事故的重要风险因素,基于脑电图(EEG)的人类认知状态的发展已成为驾驶安全领域的重点。但是,它面临其实际应用的便携式和实时问题。本研究利用思维主从左前额叶片收集注意力和冥想脑电图,并在主题处于浓度,放松,疲劳和睡眠状态时,使用关注和冥想脑电图之间的关系。结果,提出了一种基于驱动器注意与冥想eeg之间的相关系数驱动疲劳检测的新方法。同时,引入了K-CORMATE邻居(K-NN)算法以对驱动器注意力和冥想脑电图之间的相关系数进行分类,以便检测驾驶疲劳和警报。最后,基于上述技术开发了在Android智能设备上运行的软件,实验证明它具有非侵入性和实时优势,而其敏感性和特异性分别为68.31%和90.43%。

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