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Effect of Cognitive Distraction on Physiological Measures and Driving Performance in Traditional and Mixed Traffic Environments

机译:认知分心对传统和混合交通环境中生理措施和驾驶性能的影响

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Distracted driving is a dominant cause of traffic accidents. In addition, with the rapid development of intelligent vehicles, mixed traffic environments are expected to become more complicated with multiple types of intelligent vehicles sharing the road, thereby increasing the opportunities for distracted driving. However, the existing research on detecting driver distraction in mixed traffic environments is limited. Therefore, in this study, we analysed the effect of cognitive distraction on the driver physiological measures and driving performance in traditional and mixed traffic environments and compared the parameters extracted in the two environments. Sixty drivers were involved in the data collection, which included normal driving and two distracting tasks while driving in a simulator. Repeated-measures analysis of variance (ANOVA) was performed to examine the effect of cognitive distraction and traffic environments on all parameters. The results indicate that the effects of the pupil diameter, standard deviations (SDs) of the horizontal and vertical fixation angles, blink frequency, speed, SD of the lane positioning (SDLP), SD of the steering wheel angle (SDSWA), and steering entropy (SE) were significant. These findings provide a theoretical foundation for identifying the most appropriate parameters to detect cognitive distraction in traditional and mixed traffic environments to help reduce traffic accidents.
机译:分心驾驶是交通事故的主要原因。此外,随着智能车辆的快速发展,预计混合交通环境将与共享道路的多种智能车辆变得更加复杂,从而增加了分散驾驶的机会。然而,在混合交通环境中检测驾驶员分散注意的现有研究是有限的。因此,在本研究中,我们分析了认知分心对传统和混合交通环境中的驾驶生理措施和驾驶性能的影响,并比较了两种环境中提取的参数。六十司机参与了数据收集,其中包括正常驾驶和两个在模拟器中驾驶时的分散注意力任务。对方差的重复措施分析(ANOVA)进行了探讨认知分心和交通环境对所有参数的影响。结果表明,瞳孔直径,水平和垂直固定角的标准偏差(SDS)的效果,眨眼频率,速度,SD的车道定位(SDLP),SD的方向盘角度(SDSWA)和转向熵(SE)是显着的。这些调查结果为识别最合适的参数提供了一种理论基础,以检测传统和混合交通环境中的认知分心,以帮助减少交通事故。

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