School of Computer Science and Engineering, Northeastern University, Shenyang 110819, China.
Sensors (Basel). 2018 Sep 6;18(9):2971. doi: 10.3390/s18092971.
Road capacity, traffic safety, and energy efficiency can be extremely improved by forming platoons with a small intra-vehicle spacing. Automated controllers obtain vehicle speed, acceleration, and position through vehicular ad hoc networks (VANETs), which allows the performance of platoon communication to make a significant impact on the stability of the platoon. To the best of our knowledge, there is not much research relating to packet delay and packet dropping rate of platoon communication based on the IEEE 802.11p broadcasting. In this paper, we introduce platoon structure model, vehicle control model, and communication model for a single platoon scenario. By utilizing Markov process and M/G/1/K queuing theory, we put forward an analytical model to assess the property of intra-vehicle communication. The analytical model is validated by simulations and the influence of communication parameters on intra-vehicle communication performance are discussed. In addition, the experimental results demonstrate that the IEEE 802.11p-based intra-vehicle communication guarantee the stability of platoon.
通过采用较小的车间距来形成车队,可以极大地提高道路容量、交通安全和能源效率。自动化控制器通过车载自组织网络(VANET)获取车辆速度、加速度和位置,这使得车队通信的性能对车队的稳定性产生重大影响。据我们所知,基于 IEEE 802.11p 广播的车队通信的分组延迟和分组丢包率方面的研究还不多。在本文中,我们为单车队场景引入了车队结构模型、车辆控制模型和通信模型。通过利用马尔可夫过程和 M/G/1/K 排队理论,我们提出了一种分析模型来评估车内通信的性能。通过仿真验证了分析模型,并讨论了通信参数对车内通信性能的影响。此外,实验结果表明,基于 IEEE 802.11p 的车内通信可以保证车队的稳定性。