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Online Scheme for Multiple Camera Multiple Target Tracking Based on Multiple Hypothesis Tracking

机译:基于多假设跟踪的多机位多目标在线跟踪方案

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摘要

We propose an online tracking algorithm for multiple target tracking with multiple cameras. In this paper, we suggest a multiple hypothesis tracking (MHT) framework to find an unknown number of multiple tracks through the spatio-temporal association between tracklets generated from multiple cameras. In this framework, the MHT is realized online by solving the maximum weighted clique problem (MWCP) at every frame to estimate the 3D trajectories of the targets. To handle the NP-hard issue of the MWCP, we propose a novel online scheme that formulates the MWCP using feedback information from the previous frame’s result to find optimal tracks at every frame. This scheme enables the MWCP to be formulated by multiple subproblems and will significantly reduce the computation. The experiments show that the proposed algorithm performs comparably with the state-of-the-art batch algorithms, even though it adopts an online scheme.
机译:我们提出了一种用于使用多台摄像机进行多目标跟踪的在线跟踪算法。在本文中,我们建议使用多重假设跟踪(MHT)框架,以通过多个摄像机生成的小轨迹之间的时空关联找到未知数量的多个轨迹。在此框架中,通过在每一帧求解最大加权派系问题(MWCP)来在线估算MHT,以估算目标的3D轨迹。为处理MWCP的NP问题,我们提出了一种新颖的在线方案,该方案使用前一帧结果的反馈信息来制定MWCP,以在每一帧中找到最佳轨道。该方案使MWCP可以由多个子问题来表述,并且将大大减少计算量。实验表明,即使采用在线方案,该算法也能与最新的批处理算法相媲美。

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