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Autonomous Self-Regulating Intersections in Large-Scale Urban Traffic Networks: a Chania City Case Study

机译:大型城市交通网络中的自主自控交叉路口:赤毛城市案例研究

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Further deterioration of the already burdened traffic conditions is expected within the following years, especially in high population density urban regions. To cope with such problem, centralized and decentralized adaptive optimization techniques have already been proposed in literature; introducing inefficient performance though, due to the highly stochastic dynamics involved, scaling and/or model unavailability problems, as well as data transmission limitations. To confront such problems, L4GCAO, a novel, model-free, decentralized, adaptive optimization approach, has been developed for maximizing the system's overall performance, by calibrating the parameters of a given signal control strategy through decentralized self-learning elements (agents). This paper considers a realistic simulation scenario where the parameters of a signal control strategy applied at each network intersection are calibrated, to study the performance of L4GCAO. For comparison purposes, the thoroughly evaluated and verified centralized optimization counterpart approach of L4GCAO namely CAO - has also been adopted herein. The results of the study indicate that both CAO and L4GCAO present quite similar potential for improving the overall performance metric considered, with respect to a well-designed fixed time control strategy used as reference point.
机译:在接下来的几年内,预计已经沉重的交通状况的进一步恶化,特别是在高人口密度城市地区。为了应对这些问题,文献中已经提出了集中和分散的自适应优化技术;虽然介绍了低效的性能,因为涉及高度随机动态,缩放和/或模型不可用问题,以及数据传输限制。为了面对这些问题,通过分散的自学习元素(代理)校准给定信号控制策略的参数,已经开发了L4GCAO,一种新颖的,无模型,分散的,适应性的自适应优化方法,通过分散的自学习元件(代理)来校准给定信号控制策略的参数来实现系统的整体性能。本文考虑了一个现实的模拟场景,其中校准了在每个网络交叉处应用的信号控制策略的参数,以研究L4GCAO的性能。为了比较目的,本文还采用了L4GCAO的彻底评估和验证的集中优化对应物方法。该研究的结果表明CAO和L4GCAO既有相对于改善作为参考点的精心设计的固定时间控制策略,也存在改善整体绩效指标的潜力。

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