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Evolving Adaptive Traffic Signal Controllers for a Real Scenario Using Genetic Programming with an Epigenetic Mechanism

机译:使用表观遗传机制的遗传规划,在实际场景中发展自适应交通信号控制器

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An important challenge for traffic signal control is adapting to irregular changes in traffic. In recent years, different heuristics have been developed to address this issue. However, most of them are tested in artificial scenarios under controlled circumstances. In this paper, we present the first implementation of Genetic Programming in the evolution of traffic signal controllers for a real-world scenario. The evolved controllers are compared with a static control and an actuated control. The results indicate a significant improvement over traditional methods. Moreover, additional experiments indicate that the evolved controllers have the ability to adapt to unplanned changes in traffic conditions.
机译:交通信号控制的一个重要挑战是适应交通的不规则变化。近年来,已开发出不同的启发式方法来解决此问题。但是,大多数都在受控环境下的人工场景中进行了测试。在本文中,我们介绍了在现实情况下交通信号控制器发展过程中遗传编程的第一个实现。将进化后的控制器与静态控件和致动控件进行比较。结果表明与传统方法相比有显着改进。此外,其他实验表明,经过改进的控制器具有适应交通状况意外变化的能力。

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