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24.04.2024 | Connected Automated Vehicles and ITS, Electrical and Electronics, Human Factors and Ergonomics

Driver Behavior Analysis in Simulated Jaywalking and Accident Prediction Using Machine Learning Algorithms

verfasst von: Myeongkyu Lee, Jihun Choi, Songhui Kim, Ji Hyun Yang

Erschienen in: International Journal of Automotive Technology

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Abstract

Road safety can be improved if traffic accidents can be predicted and thus prevented. The use of driver-related variables to determine the possibility of an accident presents a new analysis paradigm. We used a driving simulator to create a jaywalking scenario and investigated how drivers responded to it. A total of 155 valid participants were identified across demographics (age group and gender) and participated in the experiment. We collected driver-related data on eight types of perception/reaction times, vehicle-control data, accident occurrence data, and maneuvers used for obstacle avoidance. From the statistical analysis, it was possible to derive six variables with significant differences based on whether a traffic accident occurred. Furthermore, we identified the data’s significant difference according to demographics. Artificial intelligence (AI)-classification models were used to predict whether an accident would occur with up to 90.6% accuracy. The data associated with the dangerous scenario obtained in this study were identified to predict the occurrence of traffic accidents.

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Metadaten
Titel
Driver Behavior Analysis in Simulated Jaywalking and Accident Prediction Using Machine Learning Algorithms
verfasst von
Myeongkyu Lee
Jihun Choi
Songhui Kim
Ji Hyun Yang
Publikationsdatum
24.04.2024
Verlag
The Korean Society of Automotive Engineers
Erschienen in
International Journal of Automotive Technology
Print ISSN: 1229-9138
Elektronische ISSN: 1976-3832
DOI
https://doi.org/10.1007/s12239-024-00070-2

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