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Detection of Driver Braking Intention Using EEG Signals During Simulated Driving

机译:在模拟驾驶过程中使用EEG信号检测驾驶员的制动意图

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摘要

In this work, we developed a novel system to detect the braking intention of drivers in emergency situations using electroencephalogram (EEG) signals. The system acquired eight-channel EEG and motion-sensing data from a custom-designed EEG headset during simulated driving. A novel method for accurately labeling the training data during an extremely short period after the onset of an emergency stimulus was introduced. Two types of features, including EEG band power-based and autoregressive (AR)-based, were investigated. It turned out that the AR-based feature in combination with artificial neural network classifier provided better detection accuracy of the system. Experimental results for ten subjects indicated that the proposed system could detect the emergency braking intention approximately 600 ms before the onset of the executed braking event, with high accuracy of 91%. Thus, the proposed system demonstrated the feasibility of developing a brain-controlled vehicle for real-world applications.
机译:在这项工作中,我们开发了一种新颖的系统,可以使用脑电图(EEG)信号检测紧急情况下驾驶员的制动意图。该系统在模拟驾驶过程中从定制设计的EEG耳机中获取了八通道EEG和运动感应数据。引入了一种新的方法,可以在紧急刺激发生后的极短时间内准确标记训练数据。研究了两种类型的功能,包括基于EEG频带功率和基于自回归(AR)的功能。事实证明,基于AR的功能与人工神经网络分类器的结合提供了更好的系统检测精度。对十个对象的实验结果表明,所提出的系统可以在执行制动事件开始前约600毫秒检测到紧急制动意图,其准确度高达91%。因此,所提出的系统证明了开发用于现实应用的大脑控制车辆的可行性。

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