Exploring the Effect of Visibility Factors on Vehicle–Pedestrian Crash Injury Severity

Author:

Harris Laura1ORCID,Ahmad Numan2ORCID,Khattak Asad3ORCID,Chakraborty Subhadeep1ORCID

Affiliation:

1. Department of Mechanical, Aerospace and Biomedical Engineering, The University of Tennessee, Knoxville, TN

2. National Institute of Transportation, National University of Sciences and Technology, Risalpur, Pakistan

3. Department of Civil and Environmental Engineering, The University of Tennessee, Knoxville, TN

Abstract

The objective of this work was to determine the effect of visibility-related factors and some environmental and human factors on the severity of pedestrian-vehicle crashes. It was hypothesized that decreasing visibility, contributed to by factors such as lighting, number of lanes, speed limit, and weather, are associated with an increase in injury severity. Some of the key results of the final model indicate that higher speed limits, less light conditions, and no traffic controls were significantly correlated with increased pedestrian injury severity when roadway visibility factors were under consideration. Dusk and dark with or without lighting were found to be factors correlated with increased pedestrian injury severity, while inclement weather was found to be correlated with lower pedestrian injury severity when environmental visibility-related factors were considered. Furthermore, a spatial autocorrelation revealed a high concentration of pedestrian–vehicle crashes in the Nashville and Memphis areas. This work is similar to prior works in their goal to study factors that affect pedestrian injury severity. While other models have looked at a large range of possible factors that may affect pedestrian injury severity, the model developed in this work focuses on visibility factors, environmental factors, and human-related factors. Another contribution is the data and modeling of the data. This study utilizes a dataset from Tennessee with more categories recorded for the visibility-related factors and applies a multinomial logistic regression model to the data.

Publisher

SAGE Publications

Subject

Mechanical Engineering,Civil and Structural Engineering

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