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Internet of Vehicles and Cost-Effective Traffic Signal Control

机译:车辆互联网和经济高效的交通信号控制

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The Internet of Vehicles (IoV) is attracting many researchers with the emergence of autonomous or smart vehicles. Vehicles on the road are becoming smart objects equipped with lots of sensors and powerful computing and communication capabilities. In the IoV environment, the efficiency of road transportation can be enhanced with the help of cost-effective traffic signal control. Traffic signal controllers control traffic lights based on the number of vehicles waiting for the green light (in short, vehicle queue length). So far, the utilization of video cameras or sensors has been extensively studied as the intelligent means of the vehicle queue length estimation. However, it has the deficiencies like high computing overhead, high installation and maintenance cost, high susceptibility to the surrounding environment, etc. Therefore, in this paper, we propose the vehicular communication-based approach for intelligent traffic signal control in a cost-effective way with low computing overhead and high resilience to environmental obstacles. In the vehicular communication-based approach, traffic signals are efficiently controlled at no extra cost by using the pre-equipped vehicular communication capabilities of IoV. Vehicular communications allow vehicles to send messages to traffic signal controllers (i.e., vehicle-to-infrastructure (V2I) communications) so that they can estimate vehicle queue length based on the collected messages. In our previous work, we have proposed a mechanism that can accomplish the efficiency of vehicular communications without losing the accuracy of traffic signal control. This mechanism gives transmission preference to the vehicles farther away from the traffic signal controller, so that the other vehicles closer to the stop line give up transmissions. In this paper, we propose a new mechanism enhancing the previous mechanism by selecting the vehicles performing V2I communications based on the concept of road sectorization. In the mechanism, only the vehicles within specific areas, called sectors, perform V2I communications to reduce the message transmission overhead. For the performance comparison of our mechanisms, we carry out simulations by using the Veins vehicular network simulation framework and measure the message transmission overhead and the accuracy of the estimated vehicle queue length. Simulation results verify that our vehicular communication-based approach significantly reduces the message transmission overhead without losing the accuracy of the vehicle queue length estimation.
机译:车辆互联网(IOV)正在吸引许多研究人员随着自主或智能车辆的出现。道路上的车辆正在成为配备大量传感器和强大的计算和通信能力的智能物体。在IOV环境中,借助于经济高效的交通信号控制,可以提高公路运输效率。交通信号控制器根据等待绿灯的车辆数量(短,车排长度)控制交通信号灯。到目前为止,广泛地研究了摄像机或传感器的利用作为车辆队列长度估计的智能手段。然而,它具有高计算开销,高安装和维护成本,对周围环境的高易感性等缺陷等,因此,在本文中,我们提出了一种基于车辆通信的智能交通信号控制方法,以实现成本效益低计算开销和高弹性对环境障碍的方式。在基于车辆通信的方法中,通过使用IOV的装备预发的车辆通信能力,无需额外的成本,交通信号无需额外控制。车辆通信允许车辆向业务信号控制器发送消息(即,车辆到基础设施(V2I)通信),以便基于所收集的消息来估计车辆队列长度。在我们以前的工作中,我们提出了一种可以实现车辆通信效率的机制,而不会失去交通信号控制的准确性。该机制为远离交通信号控制器的车辆提供传输偏好,使得其他车辆更靠近停止线放大传输。在本文中,我们提出了一种新机制,通过选择基于道路扇区化的概念来选择执行V2I通信的车辆来增强先前机制。在该机制中,只有特定区域内的车辆,称为扇区,执行V2I通信以减少消息传输开销。对于我们的机制的性能的比较,我们通过使用静脉车载网络仿真框架进行模拟和测量消息传输开销和估计的车辆队列长度的精度。仿真结果验证了我们的车辆通信的方法显着降低了消息传输开销,而不会失去车队队列长度估计的准确性。

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