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Modeling Ratings of In-vehicle Alerts to Pedestrian Encounters in Naturalistic Situations

机译:自然情况下行人遭遇车内警报的建模等级

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We show how an in-vehicle algorithm that alerts drivers to pedestrians can be defined using an empirical approach that quantifies the relative level with which drivers are likely to accept alerts to pedestrians. The approach was used in two studies to investigate a range of contextual factors known to influence driver ratings of alerts for pedestrians issued by a driver-assistance system. Regression analysis shows that four factors consisting of combinations of pedestrian location and motion relative to the road ahead of the vehicle explain over 80% of the variability in drivers' ratings of alerts. This finding suggests that four contextual factors largely define the perceptual cues that drivers use to rate alerts to pedestrians. The work demonstrates the utility of subjective driver responses to FOT events as a tool to inform the development of pedestrian alerting criteria.
机译:我们展示了如何使用一种经验方法来定义一种向驾驶员发出警告的行车算法,该方法可以量化驾驶员可能接受向行人发出警报的相对水平。该方法已用于两项研究中,以调查一系列已知的背景因素,这些因素会影响驾驶员辅助系统发出的行人警报的驾驶员评级。回归分析表明,由行人位置和相对于车辆前方道路的运动组成的四个因素可以解释驾驶员警报等级的80%以上的变化。这一发现表明,四个上下文因素在很大程度上定义了驾驶员用来对行人进行警报评分的感知线索。这项工作展示了主观驾驶员对FOT事件做出反应的效用,以此作为告知行人警报标准的工具。

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