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A Sensing Architecture Based on Head-Worn Inertial Sensors to Study Drivers’ Visual Patterns

机译:一种基于头部磨损惯性传感器的传感架构,以研究驱动程序的视觉模式

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Most studies on driving behaviors use video-cameras and simulators. It involves human observers to code the video data to be later analyzed, which can be a demanding task. We propose a sensing architecture to conduct studies on driving behaviors under naturalistic conditions. It includes smart glasses and a classifier algorithm to infer the vehicle’s cockpit’s spot drawing drivers’ visual attention. Thus, our architecture facilitates annotating the collected datasets with codes corresponding to classes of the cockpit’s spots. We have collected data with the sensing architecture from 15 young drivers to study how glances duration and frequency to cockpit’s spots are correlated with driving speed. Our results suggest that the incidence of drivers’ glances at all spots is less on high-speed roads than in low-speed roads. And that even though participants limited their interaction with the audio system, this is the spot that most eye fixation demanded to interact with.
机译:大多数关于驾驶行为的研究都使用视频摄像机和模拟器。它涉及人类观察者编写稍后分析的视频数据,这可能是一个苛刻的任务。我们提出了一种传感架构,以对自然条件下的驾驶行为进行研究。它包括智能眼镜和分类器算法,可推断车辆的驾驶舱现场绘图驱动程序的视觉注意。因此,我们的架构有助于使用与驾驶舱斑点的类对应的代码注释收集的数据集。我们从15名年轻司机中收集了传感架构的数据,以研究持续时间和频率与驾驶舱的斑点的速度如何与驾驶速度相关。我们的研究结果表明,在低速道路上,所有斑点的司机瞥一度的发病率少于低速道路。而且,即使参与者限制了他们与音频系统的互动,这就是大多数眼睛固定都需要与之交互的地方。

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