DocumentCode :
679279
Title :
Q-learning method for controlling traffic signal phase time in a single intersection
Author :
Araghi, Sahar ; Khosravi, Abbas ; Johnstone, Michael ; Creighton, Douglas
Author_Institution :
Centre for Intell. Syst. Res. (CISR), Deakin Univ., Geelong, VIC, Australia
fYear :
2013
fDate :
6-9 Oct. 2013
Firstpage :
1261
Lastpage :
1265
Abstract :
This study investigates the optimal setting of green times for traffic lights in an isolated intersection with the purpose of minimizing congestion. A machine learning method forms the backbone of the proposed method. Here, Q-learning is applied for signal light timing to minimize total delay. It is assumed that an intersection behaves similar to an intelligent agent learning to plan green times in each cycle using current traffic information. Compared to previous studies in this field, we expand the state space and innovatively set the reward to the average difference between traffic that enters the intersection and the queue length in the corresponding links. In contrast to previous studies, it is also assumed that the cycle time is variable. The performance of the proposed method is comprehensively compared with two traditional alternatives for controlling traffic lights. Simulation results indicate that the proposed method significantly reduces the total delay in the network when compared to the alternative methods.
Keywords :
cooperative systems; learning (artificial intelligence); minimisation; queueing theory; state-space methods; traffic information systems; Q-learning method; intelligent agent learning; machine learning method; minimizing congestion; queue length; signal light timing; single intersection; state space; traffic information; traffic light control; traffic lights; traffic signal phase time control; Adaptation models; Conferences; Delays; Intelligent transportation systems; Learning (artificial intelligence); Learning systems;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Intelligent Transportation Systems - (ITSC), 2013 16th International IEEE Conference on
Conference_Location :
The Hague
Type :
conf
DOI :
10.1109/ITSC.2013.6728404
Filename :
6728404
Link To Document :
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