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Microneedle Array Electrode-Based Wearable EMG System for Detection of Driver Drowsiness through Steering Wheel Grip

机译:微针阵列基于基于电极的可佩戴EMG系统用于通过方向盘抓握检测驾驶员困难

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摘要

Driver drowsiness is a major cause of fatal accidents throughout the world. Recently, some studies have investigated steering wheel grip force-based alternative methods for detecting driver drowsiness. In this study, a driver drowsiness detection system was developed by investigating the electromyography (EMG) signal of the muscles involved in steering wheel grip during driving. The EMG signal was measured from the forearm position of the driver during a one-hour interactive driving task. Additionally, the participant’s drowsiness level was also measured to investigate the relationship between muscle activity and driver’s drowsiness level. Frequency domain analysis was performed using the short-time Fourier transform (STFT) and spectrogram to assess the frequency response of the resultant signal. An EMG signal magnitude-based driver drowsiness detection and alertness algorithm is also proposed. The algorithm detects weak muscle activity by detecting the fall in EMG signal magnitude due to an increase in driver drowsiness. The previously presented microneedle electrode (MNE) was used to acquire the EMG signal and compared with the signal obtained using silver-silver chloride (Ag/AgCl) wet electrodes. The results indicated that during the driving task, participants’ drowsiness level increased while the activity of the muscles involved in steering wheel grip decreased concurrently over time. Frequency domain analysis showed that the frequency components shifted from the high to low-frequency spectrum during the one-hour driving task. The proposed algorithm showed good performance for the detection of low muscle activity in real time. MNE showed highly comparable results with dry Ag/AgCl electrodes, which confirm its use for EMG signal monitoring. The overall results indicate that the presented method has good potential to be used as a driver’s drowsiness detection and alertness system.
机译:司机嗜睡是全世界致命事故的主要原因。最近,一些研究已经研究了基于方向盘握力的替代方法,用于检测驾驶员嗜睡。在该研究中,通过研究在驾驶期间研究方向盘握把的肌肉的肌电学(EMG)信号来开发驾驶员嗜睡检测系统。在一小时的交互式驾驶任务期间从驱动器的前臂位置测量EMG信号。此外,还测量了参与者的嗜睡水平,以研究肌肉活动和驾驶员嗜睡水平之间的关系。使用短时傅里叶变换(STFT)和频谱图进行频域分析,以评估所得信号的频率响应。还提出了一种基于EMG信号幅度的驱动器嗜睡检测和警觉性算法。由于驾驶员困难的增加,该算法通过检测到EMG信号幅度下降来检测弱肌肉活动。使用先前呈现的微针电极(MNE)来获取EMG信号并与使用银 - 氯化银(Ag / AgCl)湿电极获得的信号进行比较。结果表明,在驾驶任务期间,参与者的嗜睡水平随着时间的推移而涉及方向盘的肌肉的活动随着时间的推移而降低。频域分析表明,在一小时驾驶任务期间,频率分量从高到低频频谱移位。所提出的算法显示出实时检测低肌肉活动的良好性能。 MNE显示出具有干燥AG / AGCL电极的高度可比结果,该电极确认其用于EMG信号监测。整体结果表明,所提出的方法具有良好的潜力,可用作驾驶员的嗜睡检测和警觉系统。

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