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Decentralized multiple target tracking using netted collaborative autonomous trackers

机译:使用网络协作式自主跟踪器进行分散式多目标跟踪

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摘要

This paper presents a decentralized approach to multiple target tracking. The novelty of this approach lies in the use of a set of autonomous while collaborative trackers to overcome the tracker coalescence problem with linear complexity. In this approach, the individual trackers are autonomous in the sense that they can select targets to track and evaluate themselves, and they are also collaborative since they need to compete for the targets against those trackers that are close to them through communication. The theoretical foundation of this new approach is based on the variational analysis of a Markov network that reveals the collaborative mechanism through fixed point iteration among these trackers and the existence of the equilibriums. In addition, a trained object detector is incorporated to help sense the potential newly appearing targets in the dynamic scene. Experimental results on challenging video sequences demonstrate the effectiveness and efficiency of the proposed method.
机译:本文提出了一种去中心化的多目标跟踪方法。这种方法的新颖之处在于使用了一组自主的同时协作的跟踪器,以克服线性复杂度的跟踪器合并问题。在这种方法中,单个跟踪器可以选择目标进行跟踪和评估,因此它们是自主的,并且它们也具有协作性,因为它们需要通过通信与与其接近的那些跟踪器竞争目标。这种新方法的理论基础是基于马尔可夫网络的变异分析,它通过这些跟踪器之间的定点迭代和平衡的存在来揭示协作机制。此外,还配备了训练有素的物体检测器,以帮助感测动态场景中潜在的新出现的目标。具有挑战性的视频序列的实验结果证明了该方法的有效性和效率。

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