JOURNAL ARTICLE

Optimizing multi-agent based urban traffic signal control system

Mingtao XuKun AnLe VuZhirui YeJiaxiao FengEnhui Chen

Year: 2018 Journal:   Journal of Intelligent Transportation Systems Vol: 23 (4)Pages: 357-369   Publisher: Taylor & Francis

Abstract

Agent-based approach is a popular tool for modelling and developing large-scale distributed systems such as urban traffic control system with dynamic traffic flows. This study proposes a multi-agent-based approach to optimize urban traffic network signal control, which utilizes a mathematical programming method to optimize the signal timing plans at intersections. To improve the overall network efficiency, we develop an online agent-based signal coordination scheme, underpinned by the communication among different intersection control agents. In addition, the initial coordination scheme that pre-adjusts the offsets between the intersections is developed based on the historical demand information. Comparison and sensitivity analysis are conducted to evaluate the performance of the proposed method on a customized traffic simulation platform using MATLAB and VISSIM. Simulation results indicate that the proposed method can effectively avoid network oversaturation and thus reduces average travel delay and improves average vehicle speed, as compared to rule-based multi-agent signal control methods.

Keywords:
VisSim Intersection (aeronautics) Signal timing Traffic simulation SIGNAL (programming language) MATLAB Computer science Real-time computing Scheme (mathematics) Multi-agent system Network traffic simulation Simulation Network traffic control Engineering Traffic signal Transport engineering Computer network Artificial intelligence

Metrics

61
Cited By
5.15
FWCI (Field Weighted Citation Impact)
29
Refs
0.96
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Traffic control and management
Physical Sciences →  Engineering →  Control and Systems Engineering
Transportation Planning and Optimization
Social Sciences →  Social Sciences →  Transportation
Traffic Prediction and Management Techniques
Physical Sciences →  Engineering →  Building and Construction

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