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Tracking in Urban Traffic Scenes from Background Subtraction and Object Detection

机译:通过背景减法和目标检测追踪城市交通场景

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In this paper, we propose to combine detections from background subtraction and from a multiclass object detector for multiple object tracking (MOT) in urban traffic scenes. These objects are associated across frames using spatial, colour and class label information, and trajectory prediction is evaluated to yield the final MOT outputs. The proposed method was tested on the Urban tracker dataset and shows competitive performances compared to state-of-the-art approaches. Results show that the integration of different detection inputs remains a challenging task that greatly affects the MOT performance.
机译:在本文中,我们提议将背景减法和多类目标检测器的检测相结合,以进行城市交通场景中的多目标跟踪(MOT)。这些对象使用空间,颜色和类别标签信息跨帧关联,并评估轨迹预测以产生最终的MOT输出。该方法在Urban Tracker数据集上进行了测试,与最先进的方法相比,具有竞争优势。结果表明,不同检测输入的集成仍然是一项具有挑战性的任务,极大地影响了MOT的性能。

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