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Efficient Traffic State Estimation for Large-Scale Urban Road Networks

机译:大型城市道路网的有效交通状态估计

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摘要

This paper presents a systematic solution to efficiently estimate the traffic state of large-scale urban road networks. We first propose the new approach to construct the exact GIS-T digital map. The exact digital map can lay the solid foundation for the traffic state estimation with the data from Global Positioning System (GPS) probe vehicles. Then, we present the following two effective methods based on GPS probe vehicles for the traffic state estimation: 1) the curve-fitting-based method and 2) the vehicle-tracking-based method. Finally, we test the proposed solution with a large number of real data from GPS probe vehicles and the standard digital map of Shanghai, China. In the experiments, data from thousands of GPS-equipped taxies were taken as the probe vehicles. The estimation accuracy and operation speed of the two different methods were systematically measured and compared. In addition, the coverages of the GPS sampling points were also investigated for the large-scale urban road network in the spatial and temporal domains. For the accuracy experiment, the ground truth was obtained by repeating the videos that were recorded on 24 road sections in downtown Shanghai. The experimental results illustrate that the proposed methods are effective and efficient in monitoring the traffic state of large-scale urban road networks.
机译:本文提出了一种系统的解决方案,可以有效地估计大型城市道路网络的交通状况。我们首先提出了一种构建精确的GIS-T数字地图的新方法。精确的数字地图可以为来自全球定位系统(GPS)探测车的数据进行交通状态估计奠定坚实的基础。然后,我们提出了以下两种基于GPS探测车辆的有效状态估计方法:1)基于曲线拟合的方法和2)基于车辆跟踪的方法。最后,我们使用来自GPS探测车的大量真实数据和中国上海的标准数字地图,对提出的解决方案进行了测试。在实验中,将数千辆配备GPS的出租车作为探测车辆。系统地测量和比较了两种不同方法的估计精度和运算速度。此外,还对时空范围内大型城市道路网的GPS采样点覆盖范围进行了调查。对于准确性实验,通过重复在上海市中心24个路段上录制的视频来获得地面真实性。实验结果表明,所提出的方法在监测大型城市道路网络的交通状态方面是有效的。

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