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APPOS: An adaptive partial occlusion segmentation method for multiple vehicles tracking

机译:APPOS:用于多辆车辆跟踪的自适应部分遮挡分割方法

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摘要

In traffic surveillance videos, it is common that the vehicles are occluded partially by each other. Such kind of occlusion situation is a challengeable task in multiple vehicles tracking. Various solutions in dealing with the occlusion for vehicles tracking have been proposed in many literatures. However, most of them are specialized on one tracking method and cannot flexibly adapt to the others. In this paper, we propose an adaptive partial occlusion segmentation method (APPOS) for multiple vehicles tracking. In this method, the occlusion detection process is firstly conducted to discover the occlusion. After that, the candidate regions of the respective occluded vehicles are roughly evaluated by the contour's optical flow. Finally, the line scanning which uses color contrast among regions is adopted to accurately locate the vehicles. We evaluate the effectiveness and accuracy of APPOS by the experiments on practical and simulating videos. (C) 2015 Elsevier Inc. All rights reserved.
机译:在交通监控视频中,车辆之间经常会部分被彼此遮挡。在多种车辆跟踪中,这种遮挡情况是一项具有挑战性的任务。在许多文献中已经提出了用于处理车辆跟踪的遮挡的各种解决方案。但是,它们中的大多数只专注于一种跟踪方法,而不能灵活地适应其他跟踪方法。在本文中,我们提出了一种用于多车辆跟踪的自适应局部遮挡分割方法(APPOS)。在这种方法中,首先进行遮挡检测过程以发现遮挡。之后,通过轮廓的光流粗略地评估各个被遮挡车辆的候选区域。最后,采用利用区域间颜色对比的线扫描来精确地定位车辆。我们通过在实际和模拟视频上进行的实验来评估APPOS的有效性和准确性。 (C)2015 Elsevier Inc.保留所有权利。

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