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A Vehicle Active Safety Model: Vehicle Speed Control Based on Driver Vigilance Detection Using Wearable EEG and Sparse Representation

机译:车辆主动安全模型:基于可穿戴式EEG和稀疏表示的驾驶员警惕性检测的车速控制

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摘要

In this paper, we present a vehicle active safety model for vehicle speed control based on driver vigilance detection using low-cost, comfortable, wearable electroencephalographic (EEG) sensors and sparse representation. The proposed system consists of three main steps, namely wireless wearable EEG collection, driver vigilance detection, and vehicle speed control strategy. First of all, a homemade low-cost comfortable wearable brain-computer interface (BCI) system with eight channels is designed for collecting the driver’s EEG signal. Second, wavelet de-noising and down-sample algorithms are utilized to enhance the quality of EEG data, and Fast Fourier Transformation (FFT) is adopted to extract the EEG power spectrum density (PSD). In this step, sparse representation classification combined with k-singular value decomposition (KSVD) is firstly introduced in PSD to estimate the driver’s vigilance level . Finally, a novel safety strategy of vehicle speed control, which controls the electronic throttle opening and automatic braking after driver fatigue detection using the above method, is presented to avoid serious collisions and traffic accidents. The simulation and practical testing results demonstrate the feasibility of the vehicle active safety model.
机译:在本文中,我们基于低成本,舒适,可穿戴式脑电图(EEG)传感器和稀疏表示的驾驶员警惕性检测,提出了一种用于车辆速度控制的车辆主动安全模型。拟议的系统包括三个主要步骤,即无线可穿戴式EEG采集,驾驶员警惕性检测和车速控制策略。首先,设计了具有八个通道的自制低成本,舒适,可穿戴的脑机接口(BCI)系统,用于收集驾驶员的EEG信号。其次,利用小波降噪和下采样算法来提高脑电数据的质量,并采用快速傅里叶变换(FFT)提取脑电功率谱密度(PSD)。在此步骤中,首先将稀疏表示分类与k奇异值分解(KSVD)结合起来,以估计驾驶员的警惕度。最后,提出了一种新的车速控制安全策略,该方法可以在驾驶员疲劳检测后使用上述方法控制电子节气门开度和自动制动,以避免严重的碰撞和交通事故。仿真和实际测试结果证明了车辆主动安全模型的可行性。

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