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A latent class modeling approach for identifying vehicle driver injury severity factors at highway-railway crossings

机译:一种潜在类建模方法,用于识别高速公路-铁路道口处的驾驶员伤害严重性因素

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摘要

In this paper, we aim to identify the different factors that influence injury severity of highway vehicle occupants, in particular drivers, involved in a vehicle-train collision at highway-railway grade crossings. The commonly used approach to modeling vehicle occupant injury severity is the traditional ordered response model that assumes the effect of various exogenous factors on injury severity to be constant across all accidents. The current research effort attempts to address this issue by applying an innovative latent segmentation based ordered logit model to evaluate the effects of various factors on the injury severity of vehicle drivers. In this model, the highway-railway crossings are assigned probabilistically to different segments based on their attributes with a separate injury severity component for each segment. The validity and strength of the formulated collision consequence model is tested using the US Federal Railroad Administration database which includes inventory data of all the railroad crossings in the US and collision data at these highway railway crossings from 1997 to 2006. The model estimation results clearly highlight the existence of risk segmentation within the affected grade crossing population by the presence of active warning devices, presence of permanent structure near the crossing and roadway type. The key factors influencing injury severity include driver age, time of the accident, presence of snow and/or rain, vehicle role in the crash and motorist action prior to the crash.
机译:在本文中,我们旨在确定影响高速公路乘员(特别是驾驶员)伤害程度的不同因素,这些伤害在高速公路-铁路平交道口发生车祸。常用的建模车辆乘员伤害严重性的方法是传统的有序响应模型,该模型假定各种外生因素对伤害严重性的影响在所有事故中都是恒定的。当前的研究工作试图通过应用创新的基于潜在分段的有序logit模型来解决此问题,以评估各种因素对车辆驾驶员伤害严重性的影响。在该模型中,根据公路和铁路交叉口的属性,概率性地将公路-铁路交叉口分配给不同的路段,并对每个路段使用单独的伤害严重性分量。使用美国联邦铁路管理局数据库测试了制定的碰撞后果模型的有效性和强度,该数据库包括美国所有铁路道口的库存数据以及1997年至2006年这些高速公路铁路道口的碰撞数据。模型估计结果清楚地突出了由于存在主动警告装置,在交叉口附近和道路类型附近存在永久性结构,因此受影响的交叉口人群中存在风险分割。影响伤害严重程度的关键因素包括驾驶员年龄,事故发生时间,下雪和/或下雨,车辆在撞车中的作用以及撞车前的驾驶员行为。

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