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    Coordinated Ramp Metering with Equity Consideration Using Reinforcement Learning

    Source: Journal of Transportation Engineering, Part A: Systems:;2017:;Volume ( 143 ):;issue: 007
    Author:
    Chao Lu
    ,
    Jie Huang
    ,
    Lianbo Deng
    ,
    Jianwei Gong
    DOI: 10.1061/JTEPBS.0000036
    Publisher: American Society of Civil Engineers
    Abstract: Reinforcement learning (RL) has been applied to solve ramp-metering problems and attracted increasing attention in recent studies. However, improving traffic efficiency is the main concern of these applications, and the issue relating to user equity has not been well considered. A new RL-based system is developed in this paper to deal with equity-related problems. With the definition of three RL elements, including reward, action, and state, this system can capture the information of user equity and balance it with traffic efficiency. Simulation experiments using real traffic data collected from a real-world motorway stretch are designed to test the performance of the new system. Compared with a widely used ramp-metering algorithm ALINEA, the new system shows superior performance on improving both traffic efficiency and user equity. Specifically, with suitable parameter settings, the new system can reduce the total time spent (TTS) by motorway users by 18.5% and maintain an equally distributed total waiting time (TWT) with a low standard deviation for TWT across on-ramps close to 0.
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      Coordinated Ramp Metering with Equity Consideration Using Reinforcement Learning

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4244716
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    • Journal of Transportation Engineering, Part A: Systems

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    contributor authorChao Lu
    contributor authorJie Huang
    contributor authorLianbo Deng
    contributor authorJianwei Gong
    date accessioned2017-12-30T13:01:42Z
    date available2017-12-30T13:01:42Z
    date issued2017
    identifier otherJTEPBS.0000036.pdf
    identifier urihttp://138.201.223.254:8080/yetl1/handle/yetl/4244716
    description abstractReinforcement learning (RL) has been applied to solve ramp-metering problems and attracted increasing attention in recent studies. However, improving traffic efficiency is the main concern of these applications, and the issue relating to user equity has not been well considered. A new RL-based system is developed in this paper to deal with equity-related problems. With the definition of three RL elements, including reward, action, and state, this system can capture the information of user equity and balance it with traffic efficiency. Simulation experiments using real traffic data collected from a real-world motorway stretch are designed to test the performance of the new system. Compared with a widely used ramp-metering algorithm ALINEA, the new system shows superior performance on improving both traffic efficiency and user equity. Specifically, with suitable parameter settings, the new system can reduce the total time spent (TTS) by motorway users by 18.5% and maintain an equally distributed total waiting time (TWT) with a low standard deviation for TWT across on-ramps close to 0.
    publisherAmerican Society of Civil Engineers
    titleCoordinated Ramp Metering with Equity Consideration Using Reinforcement Learning
    typeJournal Paper
    journal volume143
    journal issue7
    journal titleJournal of Transportation Engineering, Part A: Systems
    identifier doi10.1061/JTEPBS.0000036
    page04017028
    treeJournal of Transportation Engineering, Part A: Systems:;2017:;Volume ( 143 ):;issue: 007
    contenttypeFulltext
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