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Traffic congestion identification based on image processing

机译:基于图像处理的交通拥堵识别

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摘要

Accurate and real-time traffic information is the foundation of intelligent transportation systems (ITS). In general, density, velocity and flow are used to describe traffic status of certain road segment. However, these macroscopic parameters are not able to reflect detailed traffic scenarios. It is more valuable to detect traffic congestion, which can be the basis of dynamic control and real-time guidance. This study proposes a novel approach towards traffic congestion identification based on vehicle trajectories in intelligent vehicle infrastructure co-operation system (IVICS). Considering spatial??temporal trajectories as image, this study uses self-correlation to extract propagation speed of congestion wave. Based on this, this study constructs congestion template; by matching algorithm, congestion is further identified as well as its intensity. Simulations on next generation simulation (NGSim) dataset verify the effectiveness of the above methods.
机译:准确,实时的交通信息是智能交通系统(ITS)的基础。通常,密度,速度和流量用于描述某些路段的交通状态。但是,这些宏观参数不能反映详细的交通情况。检测交通拥堵更有价值,这可以作为动态控制和实时指导的基础。这项研究提出了一种基于智能车辆基础设施合作系统(IVICS)中车辆轨迹的交通拥堵识别的新方法。本研究以时空轨迹为图像,利用自相关提取拥塞波的传播速度。基于此,本研究构建了拥塞模板。通过匹配算法,可以进一步识别拥塞及其强度。下一代仿真(NGSim)数据集上的仿真验证了上述方法的有效性。

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