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A Novel Vision-based Method for Real-time Extracting Vehicle Flow Information on a Road

机译:一种基于视觉的基于视觉方法,用于在道路上的实时提取车辆流量信息

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A novel vision-based method for real time extracting vehicle flow information on a road is proposed in this paper. Two new vision parameters, called as the contrast and luminance distortion ones respectively, are defined and employed to extract the vehicle flow information on the road The analytical results show that the contrast distortion parameter of a video sequence can restrain the effects of the shadow interferences on the vehicle flow measurements, while the luminance distortion parameter is good for real-time background updating and supplement in order to enhance the accuracy of the measurements. In addition, the unsolved problem of the traditional vision-based methods, failing to distinguish two close consecutive vehicles, can be relaxed to a large extent by combining information from such two parameters. The experimental results from the different roads and vehicle flows under the different whether conditions show that the measurement accuracy of the proposed method is 97.27percent.
机译:本文提出了一种用于实时提取车辆流量信息的新型视觉方法。分别称为对比度和亮度失真的两个新的视觉参数,并用于在路线上提取车辆流量信息,分析结果表明视频序列的对比失真参数可以抑制阴影干扰的影响车辆流量测量,而亮度失真参数对于实时背景更新和补充,以提高测量的准确性。另外,通过组合来自这种两个参数的信息,可以在很大程度上在很大程度上放宽到基于传统视觉的方法的未解决问题。不同道路和车辆流动的实验结果在不同的条件下是否表明所提出的方法的测量精度为97.27%。

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