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A study of the effects of advanced driver assistance systems alerts on driver performance

机译:先进驾驶辅助系统警报对司机性能影响的研究

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摘要

This paper deals with the application of interactive engineering through an electroencephalogram (EEG) to detect the level of distraction or concentration of drivers of automotive vehicles. In particular, for the case of alerts, signals or outputs emitted by an advanced driver assistance systems (ADAS) in the intelligent transportation systems context. To do that and based on the state-of-the-art, an experimental protocol to detect distraction by using EEG signals of driver has been developed. Finally, the goal is to detect if drivers paid attention on the road when different kinds of alerts are emitted by the ADAS. In terms of signal processing, the challenge was the noise level in EEG records due to quality of road that had some bumpers and potholes that add noise in records due to movements of drivers. With the proposed protocol, the efficiency and utility of ADAS can be evaluated by designers to create new adaptable cabins to provide the driver a better driving environment reducing distractions according to the neurological profile. New perspectives and discussion are formulated in this paper, for example, to enhance the interactive design of the automotive vehicle cabins.
机译:本文涉及互动工程通过脑电图(EEG)来检测汽车车辆驱动器的分心或浓度水平。特别是,对于智能交通系统上下文中的高级驱动程序辅助系统(ADAS)发出的警报,信号或输出。为此而基于最先进的,已经开发了利用驾驶员的EEG信号来检测分度的实验方案。最后,当ADAS发出不同种类的警报时,目标是检测驱动程序是否在道路上收到关注。在信号处理方面,由于道路质量,攻击记录中的噪声水平是由于驱动器的运动而增加记录中的噪声和坑洼的道路。利用所提出的协议,ADA的效率和效用可以由设计人员评估,以创建新的适应性舱室,以提供驾驶员根据神经学概况减少干扰的更好的驾驶环境。例如,在本文中制定了新的观点和讨论,以增强汽车车辆舱的交互式设计。

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