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Detecting emergency situations by monitoring drivers' states from EEG

机译:通过从EEG监视驾驶员的状态来检测紧急情况

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This paper proposes a new method to detect pedestrian sudden occurrence, as an example of emergency situations, by monitoring drivers' state from EEG. Three drivers attended the experiment in a driving simulator with virtual driving environments with EEG signals being collected at twenty standard locations on the scalp. The (LDA) classifier with power spectrum of EEG potentials as input features of the detection model was used to recognize the emergency situation, and (ROC) was used to determine the threshold of the classifier. The experimental results of three healthy subjects indicate that the detection model can recognize the emergency situation within one second (shorter than the response time of drivers) with an accuracy of about 70%, showing that it is feasible to detect emergency situations by monitoring driver's states from EEG.
机译:本文提出了一种新的方法,通过从EEG监视驾驶员的状态来检测行人突然发生,以作为紧急情况的示例。三名驾驶员在具有虚拟驾驶环境的驾驶模拟器中参加了实验,并在头皮的二十个标准位置收集了EEG信号。以脑电势的功率谱作为检测模型的输入特征的(LDA)分类器用于识别紧急情况,而(ROC)用于确定分类器的阈值。三个健康受试者的实验结果表明,该检测模型可以在一秒钟内(比驾驶员的响应时间短)识别紧急情况,准确率约为70%,表明通过监视驾驶员的状态来检测紧急情况是可行的。来自脑电图。

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