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李文勇, 王文宇, 廉冠, 等. 基于宏观交通流模型的高速公路路段拥堵预警方法J. 桂林电子科技大学学报, 2025, 45(6): 576-582. DOI: 10.16725/j.1673-808X.2023212
引用本文: 李文勇, 王文宇, 廉冠, 等. 基于宏观交通流模型的高速公路路段拥堵预警方法J. 桂林电子科技大学学报, 2025, 45(6): 576-582. DOI: 10.16725/j.1673-808X.2023212
LI Wenyong, WANG Wenyu, LIAN Guan, et al. A congestion early warning method for highway section based on macro traffic flow modelJ. Journal of Guilin University of Electronic Technology, 2025, 45(6): 576-582. DOI: 10.16725/j.1673-808X.2023212
Citation: LI Wenyong, WANG Wenyu, LIAN Guan, et al. A congestion early warning method for highway section based on macro traffic flow modelJ. Journal of Guilin University of Electronic Technology, 2025, 45(6): 576-582. DOI: 10.16725/j.1673-808X.2023212

基于宏观交通流模型的高速公路路段拥堵预警方法

A congestion early warning method for highway section based on macro traffic flow model

  • 摘要: 当前高速公路拥堵已成为阻碍交通系统正常运行的一个重要问题,交通拥堵预警方法可为交通管理部门提供准确的拥堵预测信息,从而及时采取措施来避免或缓解交通拥堵。鉴于此,提出了一种基于宏观交通流模型的高速公路拥堵预警方法,可在缺乏高质量数据的情况下使用。首先,对历史交通流量数据进行时空特性分析,掌握拥堵时变规律;随后,以Underwood、Pipes和Van Aerde三种经典交通流模型为例,采用最小二乘法对数据进行拟合,利用RMSE、MAE、MRE、R2指标描述拟合程度,选取拟合精度最高的模型对交通流关键参数进行标定;最后,根据基本图斜率的变化,得到拥堵预警点对应的参数值,当交通流参数变化至预警值时发出拥堵预警。采用广西高速公路实测数据对拥堵预警方法进行测试,结果表明在拥堵发生时刻前15 ~ 40 min能够及时发出拥堵预警,说明该方法能有效地分析交通流变化趋势,并准确地发出拥堵预警,有助于为交通管理部门及时提供拥堵预测信息,减少拥堵的发生和持续。

     

    Abstract: Currently, highway congestion is a major challenge to the normal operation of the transportation system, and the congestion early warning method can provide accurate congestion prediction information for the traffic management department, enabling timely measures to be taken to mitigate traffic congestion. Therefore, a highway congestion early warning method based on a macro traffic flow model is proposed, which is applicable under limited data quality conditions. Firstly, the historical traffic flow data are analyzed in terms of spatio-temporal characteristics to grasp the time-varying pattern of congestion; subsequently, the three classical traffic flow models of Underwood, Pipes, and Van Aerde are considered, and the parameters are fitted using the least-squares method, and the degree of fit is described by using the indicators of RMSE, MAE, MRE, and R2, and the model with the highest fitting accuracy is selected to identify the key traffic flow of parameters. Finally, the parameter values corresponding to the congestion warning points are obtained according to the change of the slope of the basic diagram, and the congestion warning is issued when the traffic flow parameters change to the warning value. The congestion warning method is tested by using the measured data of Guangxi Expressway, and the results show that the congestion warning can be issued in time 15-40 min before the moment of congestion, which indicates that the method can effectively analyze the trend of traffic flow changes and accurately issue congestion warning and helps to provide timely congestion prediction information for the traffic management department to reduce the occurrence and persistence of congestion.

     

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