Hybrid Quantum-Classical Neural Network for Incident Detection
Zadid Khan, Sakib Mahmud Khan, Jean Michel Tine, Ayse Turhan Comert,, Diamon Rice, Gurcan Comert, Dimitra Michalaka, Judith Mwakalonge, Reek, Majumdar, Mashrur Chowdhury

TL;DR
This paper introduces a hybrid quantum-classical neural network for incident detection using connected vehicle data, demonstrating improved performance especially with limited training data, leveraging emerging quantum computing technologies.
Contribution
The study develops a novel hybrid quantum-classical neural network model that outperforms classical models in incident detection, particularly under data scarcity conditions.
Findings
Hybrid model achieves high recall rates (up to 98.9%) across datasets.
Hybrid model outperforms classical models in F2-score improvements (up to 7.8%).
Quantum-enhanced models are promising for data-limited incident detection applications.
Abstract
The efficiency and reliability of real-time incident detection models directly impact the affected corridors' traffic safety and operational conditions. The recent emergence of cloud-based quantum computing infrastructure and innovations in noisy intermediate-scale quantum devices have revealed a new era of quantum-enhanced algorithms that can be leveraged to improve real-time incident detection accuracy. In this research, a hybrid machine learning model, which includes classical and quantum machine learning (ML) models, is developed to identify incidents using the connected vehicle (CV) data. The incident detection performance of the hybrid model is evaluated against baseline classical ML models. The framework is evaluated using data from a microsimulation tool for different incident scenarios. The results indicate that a hybrid neural network containing a 4-qubit quantum layer…
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Taxonomy
TopicsTraffic Prediction and Management Techniques · Air Quality Monitoring and Forecasting
