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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Multi-object detection and tracking by stereo vision
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Multi-object detection and tracking by stereo vision

机译:立体视觉的多目标检测和跟踪

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摘要

This paper presents a new stereo vision-based model for multi-object detection and tracking in surveillance systems. Unlike most existing monocular camera-based systems, a stereo vision system is constructed in our model to overcome the problems of illumination variation, shadow interference, and object occlusion. In each frame, a sparse set of feature points are identified in the camera coordinate system, and then projected to the 2D ground plane. A kernel-based clustering algorithm is proposed to group the projected points according to their height values and locations on the plane. By producing clusters, the number, position, and orientation of objects in the surveillance scene can be determined for online multi-object detection and tracking. Experiments on both indoor and outdoor applications with complex scenes show the advantages of the proposed system.
机译:本文提出了一种新的基于立体视觉的监视系统中多目标检测和跟踪模型。与大多数现有的基于单眼相机的系统不同,在我们的模型中构造了立体视觉系统,以克服照明变化,阴影干扰和物体遮挡的问题。在每帧中,在相机坐标系中识别出一组稀疏的特征点,然后将其投影到2D地平面。提出了一种基于核的聚类算法,根据投影点的高度值和在平面上的位置对投影点进行分组。通过生成群集,可以确定监视场景中对象的数量,位置和方向,以进行在线多对象检测和跟踪。在具有复杂场景的室内和室外应用中进行的实验表明了该系统的优势。

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