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Connected Component Model for Multi-Object Tracking

机译:用于多对象跟踪的连接组件模型

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In multi-object tracking, it is critical to explore the data associations by exploiting the temporal information from a sequence of frames rather than the information from the adjacent two frames. Since straightforwardly obtaining data associations from multi-frames is an NP-hard multi-dimensional assignment (MDA) problem, most existing methods solve this MDA problem by either developing complicated approximate algorithms, or simplifying MDA as a 2D assignment problem based upon the information extracted only from adjacent frames. In this paper, we show that the relation between associations of two observations is the equivalence relation in the data association problem, based on the spatial–temporal constraint that the trajectories of different objects must be disjoint. Therefore, the MDA problem can be equivalently divided into independent subproblems by equivalence partitioning. In contrast to existing works for solving the MDA problem, we develop a connected component model (CCM) by exploiting the constraints of the data association and the equivalence relation on the constraints. Based upon CCM, we can efficiently obtain the global solution of the MDA problem for multi-object tracking by optimizing a sequence of independent data association subproblems. Experiments on challenging public data sets demonstrate that our algorithm outperforms the state-of-the-art approaches.
机译:在多对象跟踪中,至关重要的是,通过利用来自一系列帧的时间信息而不是来自相邻两个帧的信息来探索数据关联。由于直接从多帧获取数据关联是一个NP难解决的多维分配(MDA)问题,因此大多数现有方法都可以通过开发复杂的近似算法或根据提取的信息将MDA简化为2D分配问题来解决此MDA问题。仅来自相邻帧。在本文中,基于不同对象的轨迹必须不相交的时空约束,我们证明了两个观测值的关联之间的关系是数据关联问题中的等价关系。因此,可以通过等价划分将MDA问题等效地分为独立的子问题。与解决MDA问题的现有工作相反,我们通过利用数据关联的约束以及约束上的等价关系来开发连接组件模型(CCM)。基于CCM,通过优化一系列独立的数据关联子问题,我们可以有效地获得MDA问题的全局解决方案,以进行多对象跟踪。在具有挑战性的公共数据集上进行的实验表明,我们的算法优于最新方法。

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