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逆行驾驶事故:一种多对应方法识别影响因素。

Wrong-way driving crashes: A multiple correspondence approach to identify contributing factors.

机构信息

a Center for Advanced Infrastructure and Transportation (CAIT), Rutgers , The State University of New Jersey , Piscataway , New Jersey.

b Grice Consulting Group, LLC , Atlanta , Georgia.

出版信息

Traffic Inj Prev. 2018 Jan 2;19(1):35-41. doi: 10.1080/15389588.2017.1347260. Epub 2017 Jun 28.

Abstract

OBJECTIVE

Wrong-way driving (WWD) crashes result in 1.34 fatalities per fatal crash, whereas for other non-WWD fatal crashes this number drops to 1.10. As such, further in-depth investigation of WWD crashes is necessary. The objective of this study is 2-fold: to identify the characteristics that best describe WWD crashes and to verify the factors associated with WWD occurrence.

METHODS

We collected and analyzed 15 years of crash data from the states of Illinois and Alabama. The final data set includes 398 WWD crashes. The rarity of WWD events and the consequently small sample size of the crash database significantly influence the application of conventional log-linear models in analyzing the data, because they use maximum-likelihood estimation. To overcome this issue, in this study, we employ multiple correspondence analysis (MCA) to define the structure of the crash data set and identify the significant contributing factors to WWD crashes on freeways.

RESULTS

The results of the present study specify various factors that characterize and influence the probability of WWD crashes and can thus lead to the development of several safety countermeasures and recommendations. According to the obtained results, factors such as driver age, driver condition, roadway surface conditions, and lighting conditions were among the most significant contributors to WWD crashes.

CONCLUSIONS

Despite many other methods that identify only the contributing factors, this method can identify possible associations between various contributing factors. This is an inherent advantage of the MCA method, which can provide a major opportunity for state departments of transportation (DOTs) to select safety countermeasures that are associated with multiple safety benefits.

摘要

目的

逆向行驶(WWD)事故导致每起致命事故造成 1.34 人死亡,而其他非 WWD 致命事故这一数字降至 1.10。因此,有必要对 WWD 事故进行更深入的调查。本研究的目的有两个:一是确定最能描述 WWD 事故的特征,二是验证与 WWD 发生相关的因素。

方法

我们收集和分析了来自伊利诺伊州和阿拉巴马州的 15 年的事故数据。最终数据集包括 398 起 WWD 事故。WWD 事件的罕见性以及由此导致的事故数据库的样本量很小,这极大地影响了常规对数线性模型在分析数据中的应用,因为它们使用最大似然估计。为了克服这个问题,在本研究中,我们采用多元对应分析(MCA)来定义事故数据集的结构,并确定高速公路上 WWD 事故的显著影响因素。

结果

本研究的结果指定了各种特征和影响 WWD 事故概率的因素,从而可以制定几种安全对策和建议。根据获得的结果,驾驶员年龄、驾驶员状况、路面状况和照明状况等因素是 WWD 事故的最重要因素之一。

结论

尽管有许多其他方法只能识别促成因素,但这种方法可以识别各种促成因素之间的可能关联。这是 MCA 方法的固有优势,它为州交通部门(DOT)提供了一个重要机会,可以选择与多种安全效益相关的安全对策。

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