A STUDY ON OPTIMIZING TRAFFIC SIGNAL CONTROL FOR IMPROVED TRAFFIC FLOW

S. Ergün
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Abstract

Addressing traffic congestion holds paramount importance due to its severe economic and environmental repercussions. This study introduces an approach to address this pervasive issue by employing a wide-area control strategy for diverse road networks. The strategy leverages a dynamic offset control method and a multi-agent model to create a unique solution. In this framework, individual intersections function as distinct agents, engaging in negotiations, establishing connections, and forming a dynamic offset control zone resembling a tree structure. Within this structure, agents collaboratively manage green wave synchronization based on real-time traffic conditions at the network boundaries. To evaluate the effectiveness of this approach, comprehensive tests utilize both a simulated road network (Experiment 1) and an actual grid-like road network (Experiment 2). In Experiment 1, the proposed method consistently reduces lost time, resulting in an average reduction of 15% across all scenarios. Experiment 2 demonstrates a reduction in lost time across various intervals, with an impressive average reduction of 34% in lost time across all scenarios. These results demonstrate the strategy's ability to dynamically and adaptively establish green waves that significantly enhance traffic flow. In conclusion, this study demonstrates that the proposed method autonomously conducts offset control, effectively contributing to the smooth flow of vehicles.
关于优化交通信号控制以改善交通流量的研究
由于交通拥堵会对经济和环境造成严重影响,因此解决交通拥堵问题至关重要。本研究介绍了一种方法,通过对不同道路网络采用广域控制策略来解决这一普遍问题。该策略利用动态偏移控制方法和多代理模型创建了一个独特的解决方案。在这一框架中,各个交叉口作为不同的代理机构,参与协商、建立联系,并形成一个类似树状结构的动态偏移控制区。在这个结构中,代理根据网络边界的实时交通状况,协同管理绿波同步。为了评估这种方法的有效性,我们利用模拟道路网络(实验 1)和实际网格状道路网络(实验 2)进行了综合测试。在实验 1 中,所提出的方法持续减少了损失时间,在所有场景中平均减少了 15%。实验 2 显示,在不同的时间间隔内,损失的时间都有所减少,在所有情况下,损失的时间平均减少了 34%,令人印象深刻。这些结果表明,该策略能够动态、自适应地建立绿波,从而显著提高交通流量。总之,这项研究表明,所提出的方法能自主进行偏移控制,有效促进了车辆的顺畅通行。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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