SAFETYLIT WEEKLY UPDATE

We compile citations and summaries of about 400 new articles every week.
RSS Feed

HELP: Tutorials | FAQ
CONTACT US: Contact info

Search Results

Journal Article

Citation

Li Z, Liu P, Xu C, Duan H, Wang W. IEEE Trans. Intel. Transp. Syst. 2017; 18(11): 3204-3217.

Copyright

(Copyright © 2017, IEEE (Institute of Electrical and Electronics Engineers))

DOI

10.1109/TITS.2017.2687620

PMID

unavailable

Abstract

The primary objective of this paper was to incorporate the reinforcement learning technique in variable speed limit (VSL) control strategies to reduce system travel time at freeway bottlenecks. A Q-learning (QL)-based VSL control strategy was proposed. The controller included two components: a QL-based offline agent and an online VSL controller. The VSL controller was trained to learn the optimal speed limits for various traffic states to achieve a long-term goal of system optimization. The control effects of the VSL were evaluated using a modified cell transmission model for a freeway recurrent bottleneck. A new parameter was introduced in the cell transmission model to account for the overspeed of drivers in unsaturated traffic conditions. Two scenarios that considered both stable and fluctuating traffic demands were evaluated. The effects of the proposed strategy were compared with those of the feedback-based VSL strategy. The results showed that the proposed QL-based VSL strategy outperformed the feedback-based VSL strategy. More specifically, the proposed VSL control strategy reduced the system travel time by 49.34% in the stable demand scenario and 21.84% in the fluctuating demand scenario.


Language: en

Keywords

Adaptive control; bottleneck; Computational modeling; congestion; control engineering computing; feedback; freeway; freeway recurrent bottleneck; Heuristic algorithms; learning (artificial intelligence); Learning (artificial intelligence); modified cell transmission model; Optimal control; Optimization; predictive control; Q-learning; QL; reinforcement learning; road safety; road traffic control; system optimization; traffic congestion; Traffic control; traffic engineering computing; Variable speed limit; variable speed limit control; velocity control; VSL control

NEW SEARCH


All SafetyLit records are available for automatic download to Zotero & Mendeley
Print