Intelligent traffic light control based on clustering using Vehicular Ad-hoc Networks

Hossein Rashid, M. Ashrafi, M. Azizi, Mohammad Reza Heydarinezhad
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引用次数: 7

Abstract

As urbanization grows and the cost of vehicle production decreases, urban traffic has become a major problem of modern life. Developing intelligent vehicles alongside standardizing inter-vehicle communications promises that this technology will be a part of future life. In this research, we propose a method in which clustering is used to gather vehicles' movements information in a vehicle ad-hoc network. This method is based on extending green wave using road-side units as a fixed agent and on board units (OBU) in vehicles as a mobile agent. This information is then transmitted to traffic lights for decision making. This algorithm evaluated using Monte Carlo simulation. The simulation results show this method has a positive effect on reducing the average waiting time and overall stop of the vehicles behind the traffic lights.
基于车辆自组织网络的聚类智能交通灯控制
随着城市化的发展和车辆生产成本的降低,城市交通已成为现代生活的一个主要问题。智能汽车的发展以及车际通信的标准化,预示着这项技术将成为未来生活的一部分。在本研究中,我们提出了一种在车辆自组织网络中使用聚类来收集车辆运动信息的方法。该方法以道路侧单元作为固定代理,车载单元(OBU)作为移动代理,扩展绿波。然后,这些信息被传送到交通信号灯以供决策。用蒙特卡罗模拟对该算法进行了评估。仿真结果表明,该方法对减少红绿灯后车辆的平均等待时间和总体停车时间具有积极的效果。
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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