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首页> 外文期刊>Frontiers in Human Neuroscience >Evaluation of a Dry EEG System for Application of Passive Brain-Computer Interfaces in Autonomous Driving
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Evaluation of a Dry EEG System for Application of Passive Brain-Computer Interfaces in Autonomous Driving

机译:干式EEG系统在无人驾驶中的应用评估

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We tested the applicability and signal quality of a 16 channel dry electroencephalography (EEG) system in a laboratory environment and in a car under controlled, realistic conditions. The aim of our investigation was an estimation how well a passive Brain-Computer Interface (pBCI) can work in an autonomous driving scenario. The evaluation considered speed and accuracy of self-applicability by an untrained person, quality of recorded EEG data, shifts of electrode positions on the head after driving-related movements, usability, and complexity of the system as such and wearing comfort over time. An experiment was conducted inside and outside of a stationary vehicle with running engine, air-conditioning, and muted radio. Signal quality was sufficient for standard EEG analysis in the time and frequency domain as well as for the use in pBCIs. While the influence of vehicle-induced interferences to data quality was insignificant, driving-related movements led to strong shifts in electrode positions. In general, the EEG system used allowed for a fast self-applicability of cap and electrodes. The assessed usability of the system was still acceptable while the wearing comfort decreased strongly over time due to friction and pressure to the head. From these results we conclude that the evaluated system should provide the essential requirements for an application in an autonomous driving context. Nevertheless, further refinement is suggested to reduce shifts of the system due to body movements and increase the headset's usability and wearing comfort.
机译:我们在受控的现实条件下,在实验室环境和汽车中测试了16通道干式脑电图(EEG)系统的适用性和信号质量。我们研究的目的是估计被动式脑机接口(pBCI)在自动驾驶场景中的工作情况。该评估考虑了未经训练的人的自我适用性的速度和准确性,EEG数据记录的质量,与驾驶相关的运动后头上电极位置的变化,可用性和系统本身的复杂性以及随时间的佩戴舒适性。在带有运转发动机,空调和静音收音机的固定车辆的内部和外部进行了实验。信号质量足以在时域和频域中进行标准EEG分析,并足以用于pBCI。尽管车辆引起的干扰对数据质量的影响微乎其微,但与驾驶相关的运动却导致电极位置发生强烈变化。通常,所使用的EEG系统可实现帽和电极的快速自适用性。系统评估的可用性仍然可以接受,但由于头部的摩擦和压力,佩戴舒适性随时间而大大降低。根据这些结果,我们得出结论,所评估的系统应为自动驾驶环境中的应用提供基本要求。尽管如此,建议进行进一步改进以减少由于身体移动引起的系统偏移,并增加头戴式耳机的可用性和佩戴舒适度。

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