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Automatic Traffic Surveillance System for Vision-Based Vehicle Recognition and Tracking

机译:基于视觉的车辆识别和跟踪的自动交通监控系统

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摘要

This paper proposes a real-time traffic surveillance system for the detection, recognition, and tracking of multiple vehicles in roadway images. Moving vehicles can be automatically separated from the image sequences by a moving object segmentation method. Since CCD surveillance cameras are typically mounted at some distance from roadways, occlusion is a common and vexing problem for traffic surveillance systems. The segmentation and recognition method uses the length, width, and roof size to classify vehicles as vans, utility vehicles, sedans, mini trucks, or large vehicles, even when occlusive vehicles are continuously merging from one frame to the next. The segmented objects can be recognized and counted in accordance with their varying features, via the proposed recognition and tracking methods. The system has undergone roadside tests in Hsinchu and Taipei, Taiwan. Experiments using complex road scenes under various weather conditions are discussed and demonstrate the robustness, accuracy, and responsiveness of the method.
机译:本文提出了一种实时交通监控系统,用于检测,识别和跟踪道路图像中的多个车辆。可以通过运动对象分割方法自动将运动的车辆与图像序列分离。由于CCD监控摄像机通常安装在距道路一定距离的地方,因此对于交通监控系统而言,遮挡是一个常见且棘手的问题。分割和识别方法使用长度,宽度和车顶尺寸将车辆分类为厢式货车,多功能车,轿车,微型卡车或大型车辆,即使闭塞车辆不断从一帧合并到下一帧。通过建议的识别和跟踪方法,可以根据分段对象的变化特征来识别和计数分段对象。该系统已在台湾新竹和台北进行了路边测试。讨论了在各种天气条件下使用复杂道路场景的实验,并证明了该方法的鲁棒性,准确性和响应性。

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