Digital Twin-based Driver Risk-Aware Intelligent Mobility Analytics for Urban Transportation Management
Tao Li, Zilin Bian, Haozhe Lei, Fan Zuo, Ya-Ting Yang, Quanyan Zhu,, Zhenning Li, Zhibin Chen, Kaan Ozbay

TL;DR
This paper introduces a novel Digital Twin-based system for real-time urban mobility and safety risk prediction, enabling proactive traffic management and incident prevention through integrated spatial-temporal modeling and simulation.
Contribution
The paper presents the first digital twin architecture that simultaneously models mobility and safety risks in urban transportation management.
Findings
Achieved MAPEs of 8.40% to 15.11% in traffic volume estimation.
Predicted safety risks with MAPEs from 0.85% to 12.97%.
Enabled 5-minute lead time for incident detection.
Abstract
Traditional mobility management strategies emphasize macro-level mobility oversight from traffic-sensing infrastructures, often overlooking safety risks that directly affect road users. To address this, we propose a Digital Twin-based Driver Risk-Aware Intelligent Mobility Analytics (DT-DIMA) system. The DT-DIMA system integrates real-time traffic information from pan-tilt-cameras (PTCs), synchronizes this data into a digital twin to accurately replicate the physical world, and predicts network-wide mobility and safety risks in real time. The system's innovation lies in its integration of spatial-temporal modeling, simulation, and online control modules. Tested and evaluated under normal traffic conditions and incidental situations (e.g., unexpected accidents, pre-planned work zones) in a simulated testbed in Brooklyn, New York, DT-DIMA demonstrated mean absolute percentage errors…
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Taxonomy
TopicsTraffic Prediction and Management Techniques · Digital Transformation in Industry
