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基于车对车交互、几何特征和运行条件评估城市位置的追尾碰撞风险。

Assessing rear-end crash potential in urban locations based on vehicle-by-vehicle interactions, geometric characteristics and operational conditions.

机构信息

Lab. for Transport Engineering, Dept. of Civil and Environmental Engineering, University of Cyprus, 91, Aglanzias Av., 2111 Nicosia, Cyprus.

Dept. of Civil, Environmental and Construction Engineering, University of Central Florida, Orlando, FL, 32816-2450, United States.

出版信息

Accid Anal Prev. 2018 Sep;118:221-235. doi: 10.1016/j.aap.2018.02.024. Epub 2018 Mar 2.

Abstract

Rear-end crashes are one of the most frequently occurring crash types, especially in urban networks. An understanding of the contributing factors and their significant association with rear-end crashes is of practical importance and will help in the development of effective countermeasures. The objective of this study is to assess rear-end crash potential at a microscopic level in an urban environment, by investigating vehicle-by-vehicle interactions. To do so, several traffic parameters at the individual vehicle level have been taken into consideration, for capturing car-following characteristics and vehicle interactions, and to investigate their effect on potential rear-end crashes. In this study rear-end crash potential was estimated based on stopping distance between two consecutive vehicles, and four rear-end crash potential cases were developed. The results indicated that 66.4% of the observations were estimated as rear-end crash potentials. It was also shown that rear-end crash potential was presented when traffic flow and speed standard deviation were higher. Also, locational characteristics such as lane of travel and location in the network were found to affect drivers' car following decisions and additionally, it was shown that speeds were lower and headways higher when Heavy Goods Vehicles lead. Finally, a model-based behavioral analysis based on Multinomial Logit regression was conducted to systematically identify the statistically significant variables in explaining rear-end risk potential. The modeling results highlighted the significance of the explanatory variables associated with rear-end crash potential, however it was shown that their effect varied among different model configurations. The outcome of the results can be of significant value for several purposes, such as real-time monitoring of risk potential, allocating enforcement units in urban networks and designing targeted proactive safety policies.

摘要

追尾碰撞是最常见的碰撞类型之一,尤其是在城市网络中。了解促成因素及其与追尾碰撞的显著关联具有实际意义,有助于制定有效的对策。本研究的目的是通过调查车辆间的相互作用,在微观层面上评估城市环境中的追尾碰撞可能性。为此,考虑了几个车辆级别的交通参数,以捕捉跟驰特性和车辆相互作用,并研究它们对潜在追尾碰撞的影响。在这项研究中,基于两辆车之间的停车距离来估计追尾碰撞的可能性,并开发了四种追尾碰撞的可能性情况。结果表明,66.4%的观察结果被估计为追尾碰撞的可能性。结果还表明,当交通流量和速度标准差较高时,会出现追尾碰撞的可能性。此外,行驶车道和网络位置等位置特征被发现会影响驾驶员的跟驰决策,并且当重型货车在前时,速度会降低,车头时距会增加。最后,进行了基于多项逻辑回归的基于模型的行为分析,以系统地识别解释追尾风险可能性的具有统计学意义的变量。建模结果突出了与追尾碰撞潜在相关的解释变量的重要性,然而,结果表明它们在不同的模型配置中的影响有所不同。结果的结果对于多种目的都具有重要价值,例如实时监测风险潜力、在城市网络中分配执法单位以及设计有针对性的主动安全政策。

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