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首页> 外文期刊>Computer Vision, IET >Urban road user detection and classification using 3D wire frame models
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Urban road user detection and classification using 3D wire frame models

机译:使用3D线框模型对城市道路用户进行检测和分类

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摘要

This study presents a detection and classification system for vehicles and pedestrians in urban traffic scenes. This aims to guide surveillance operators and reduce human resources for observing hundreds of cameras in urban traffic surveillance. The authors perform per frame vehicle detection and classification using 3D models on calibrated cameras. Motion silhouettes (from background estimation) are extracted and compared to a projected model silhouette to identify the ground plane position and class of vehicles and pedestrians. The system is evaluated with the reference i-LIDS datasets from the UK Home Office. Performance for varying numbers of classes for three different weather conditions and for different video input filters is evaluated. The full system including detection and classification achieves a recall of 87% at a precision of 85.5% outperforming similar systems in the literature. The i-LIDS dataset is available to other researchers to compare with our results. The authors conclude with an outlook to use local features for improving the classification and detection performance.
机译:这项研究提出了一种针对城市交通场景中的车辆和行人的检测和分类系统。这旨在指导监视操作员并减少用于观察城市交通监视中数百个摄像机的人力资源。作者使用经过校准的相机上的3D模型执行每帧车辆检测和分类。提取运动轮廓(来自背景估计),并将其与投影模型轮廓进行比较,以识别地平面位置以及车辆和行人的等级。使用英国内政部的参考i-LIDS数据集对系统进行评估。评估了针对三种不同天气条件和不同视频输入过滤器的不同类别的性能。完整的系统(包括检测和分类)以85.5%的精度实现了87%的召回率,优于文献中的类似系统。 i-LIDS数据集可供其他研究人员与我们的结果进行比较。作者的结论是使用局部特征来改善分类和检测性能。

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