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Driver Unique Acceleration Behaviours and Stability over Two Years

机译:两年来驾驶员独特的加速行为和稳定性

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The identification of characteristic individual driving behaviours is an emerging challenge that occurs within longitudinal studies of drivers to distinguish different drivers of a shared vehicle. It also has application in the insurance industry where insurance risk and associated owner premium depends on the diversity or lack thereof of drivers for a vehicle such as a vehicle drivenever driven by secondary drivers that have higher risk driving behaviours. Lastly, emerging self driving vehicles could allow the owner to personalize the vehicle behaviour to drive more like them increasing owner acceptance of the technology. In this paper, a big data set of driving data for 14 drivers is analyzed - a single year of data includes over 250,000 km and almost 5000 hours of driving for the 14 drivers. Analytics methods are presented that identify acceleration events within the data for the drivers and it then proposes a two-phase relationship model for these events that is indicative of unique drivers' behaviour. The results show that the two-phase acceleration relationship for maximum and mean acceleration allows 84.6% and 80.2% of the 91 driver pairs that can be formed from the 14 drivers to be distinguished (p<;5%). The paper shows the stability of two-phase acceleration and deceleration relationships for the 14 drivers as the second year of events for each of the 14 drivers have a mean correlation with the first year relationships of 0.971 or higher.
机译:特征性个人驾驶行为的识别是在驾驶员的纵向研究中出现的新挑战,以区分共享车辆的不同驾驶员。它还在保险业中应用,其中保险风险和相关的所有者保费取决于车辆驾驶员的多样性或缺乏,例如具有较高风险驾驶行为的次级驾驶员驾驶的车辆/从未驾驶过的车辆。最后,新兴的自动驾驶汽车可以使车主个性化车辆行为,从而像他们一样驾驶,从而提高车主对技术的接受程度。在本文中,分析了14个驾驶员的驾驶数据大数据集-一年的数据包括25万公里以上的行驶时间和14个驾驶员的近5000小时的驾驶时间。提出了识别驾驶员数据中的加速事件的分析方法,然后提出了针对这些事件的两阶段关系模型,该模型表明了驾驶员的独特行为。结果表明,最大和平均加速度的两相加速度关系可以区分由14个驱动器组成的91个驱动器对中的84.6%和80.2%(p <; 5%)。本文显示了14个驾驶员的两相加减速关系的稳定性,因为14个驾驶员中每一个的第二年事件与0.971或更高的第一年关系具有平均相关性。

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