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Occlusion-Robust Human Tracking with Integrated Multi-View Depth Imagery

机译:集成多视图深度影像的遮盖性强的人体跟踪

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摘要

In this paper, we present a computer vision-based human tracking system with multiple stereo cameras. Many widely used methods, such as KLT-tracker, update the trackers “frame-to-frame,” so that features extracted from one frame are utilized to update their current state. In contrast, we propose a novel optimization technique for the “multi-frame” approach that computes resultant trajectories directly from video sequences, in order to achieve high-level robustness against severe occlusion, which is known to be a challenging problem in computer vision. We developed a heuristic optimization technique to estimate human trajectories, instead of using dynamic programming (DP) or an iterative approach, which makes our method sufficiently computationally efficient to operate in realtime. Six video sequences where one to six people walk in a narrow laboratory space are processed using our system. The results confirm that our system is capable of tracking cluttered scenes in which severe occlusion occurs and people are frequently in close proximity to each other. Moreover, minimal information is required for tracking, instead of full camera images, which is communicated over the network. Hence, commonly used network devices are sufficient for constructing our tracking system.
机译:在本文中,我们提出了一个具有多个立体相机的基于计算机视觉的人体跟踪系统。许多广泛使用的方法(例如KLT跟踪器)会“逐帧”更新跟踪器,以便利用从一帧中提取的要素来更新其当前状态。相反,我们针对“多帧”方法提出了一种新颖的优化技术,该技术直接从视频序列中计算出最终轨迹,以实现针对严重遮挡的高水平鲁棒性,众所周知,这是计算机视觉中的一个难题。我们开发了一种启发式优化技术来估计人类的轨迹,而不是使用动态编程(DP)或迭代方法,这使我们的方法具有足够的计算效率,可以实时操作。使用我们的系统处理了六个视频片段,其中一到六个人在狭窄的实验室空间中行走。结果证实我们的系统能够跟踪发生严重遮挡并且人们经常彼此靠近的混乱场景。此外,跟踪所需的信息最少,而不是通过网络传送的完整摄像机图像所需的信息。因此,常用的网络设备足以构成我们的跟踪系统。

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