Development of Traffic Flow Measurement System Using Fixed Point Cameras

Masaya Kikuzawa, ManYong Jeong
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Abstract

Recently, traffic congestions caused by increase of vehicle possession and complicatedness of traffic system have induced several serious social problems. In order to solve these problems, a lot of attempts have been carried out in many areas including new type of traffic signal system employing fuzzy control or neural network system. In addition to that system, a visualized miniature traffic simulation system based on real road system has been developed to examine the performance of the new traffic signal system and its effectiveness has been proved in several problems, which cannot sufficiently model that is able to reproduce the real traffic behaviors. In this study, a traffic flow measurement system has been developed to extract traffic flow data by analyzing images from the fixed point cameras set up near intersections. The measurement system has been developed by optical flow and R-CNN, and its performance was evaluated based on the recognition rate of the number of cars passing the intersection and the recognition rate of matching for same vehicle and the accuracy of the means speed estimated by the difference of passage time at two intersections. The result showed that the new system has higher rate of matching for same vehicle than previous study.
基于定点摄像机的交通流量测量系统的研制
近年来,由于机动车保有量的增加和交通系统的复杂化所引起的交通拥堵已经引发了一些严重的社会问题。为了解决这些问题,人们在许多领域进行了大量的尝试,包括采用模糊控制或神经网络系统的新型交通信号系统。在此基础上,开发了一个基于真实道路系统的可视化微型交通仿真系统,对新型交通信号系统的性能进行了检验,并在若干问题中证明了其有效性,但该系统不能充分建模,能够再现真实的交通行为。本研究开发了一种交通流量测量系统,通过分析设置在十字路口附近的定点摄像机的图像来提取交通流量数据。利用光流技术和R-CNN技术开发了该测量系统,并根据交叉口通过车辆数量识别率、同一车辆匹配识别率和两个交叉口通过时间差估计平均速度的准确性对其性能进行了评价。结果表明,该系统对同一车辆的匹配率高于以往的研究。
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