Analysis of Injury Severity of Drivers Involved Different Types of Two-Vehicle Crashes Using Random-Parameters Logit Models with Heterogeneity in Means and Variances

Author:

Wu Qiang1ORCID,Song Dongdong2ORCID,Wang Chenzhu3ORCID,Chen Fei3ORCID,Cheng Jianchuan3,Easa Said M.4,Yang Yitao5,Yang Wenchen67ORCID

Affiliation:

1. School of Transportation, Nantong University, Nantong, China

2. School of System·Science, Beijing Jiaotong University, Beijing 100044, China

3. School of Transportation, Southeast University, 2 Sipailou, Nanjing, Jiangsu 210096, China

4. Department of Civil Engineering, Toronto Metropolitan University, Toronto, Ontario M5B 2K3, Canada

5. Department of Transport & Planning, Faculty of Civil Engineering and Geosciences, Delft University of Technology, Stevinweg 1, Delft 2628 CN, Netherlands

6. National Engineering Laboratory for Surface Transportation Weather Impacts Prevention, Broadvision Engineering Consultants Co., Ltd., Kunming 650200, China

7. Yunnan Key Laboratory of Digital Communications, Kunming 650103, China

Abstract

This study proposes random-parameters multinomial logit models, with heterogeneity in means and variances, to explore the differences in the factors influencing injury severities of drivers involved in different types of two-vehicle crashes. The models are verified using crash data from the United Kingdom (UK) over three years (2016–2018). Three types of crashes are separately identified (car-car, car-truck, and truck-truck crashes). In this study, a wide variety of potential variables, including the driver, vehicle, road, and environmental characteristics, are considered, with two possible injury-severity outcomes: severe and slight injury. The results show that unobserved heterogeneity existed for young drivers in both car-car and truck-truck crash models and the 30 mph speed limit in the three separate models. Remarkably variations are observed in crashes involving different types of vehicles. The driver’s age and gender, speeding, sideswipes, presence of junctions, weekdays, unlit, and weather conditions significantly impact driver-injury severities in various types of vehicle crashes. These findings are expected to help policymakers seek to improve highway safety and implement proper safety countermeasures.

Funder

Science and Technology Program of the Department of Transportation, Yunnan Province

Publisher

Hindawi Limited

Subject

Strategy and Management,Computer Science Applications,Mechanical Engineering,Economics and Econometrics,Automotive Engineering

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