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    Supervised learning from human performance at the computationally hard problemof optimal traffic signal control on a network of junctions

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    Date
    2014
    Author
    Box, Simon
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    Abstract
    Optimal switching of traffic lights on a network of junctions is a computationally intractable problem. In this research, road traffic networks containing signallized junctions are simulated. A computer game interface is used to enable a human ‘player’ to control the traffic light settings on the junctions within the simulation. A supervised learning approach, based on simple neural network classifiers can be used to capture human player’s strategies in the game and thus develop a human-trained machine control (HuTMaC) system that approaches human levels of performance.
    URI
    https://lib.hpu.edu.vn/handle/123456789/22272
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