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Multiview pedestrian localisation via a prime candidate chart based on occupancy likelihoods

机译:通过基于占用可能性的主要候选图进行多视图行人定位

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A sound way to localize occluded people is to project the foregrounds from multiple camera views to a reference view by homographies and find the foreground intersections. However, this may give rise to phantoms due to foreground intersections from different people. In this paper, each intersection region is warped back to the original camera view and is associated with a candidate box of the average size of pedestrians at that location. Then a joint occupancy likelihood is calculated for each intersection region. In the second step, essential candidate boxes are identified first, each of which covers at least a part of the foreground that is not covered by another candidate box. The non-essential candidate boxes are selected to cover the remaining foregrounds in the order of their joint occupancy likelihoods. Experiments on benchmark video datasets have demonstrated the good performance of our algorithm in comparison with other state-of-the-art methods.
机译:定位被遮挡人员的一种合理方法是通过单应性图将前景从多个摄影机视图投影到参考视图,并找到前景相交处。但是,由于来自不同人的前景交叉点,这可能会导致幻影。在本文中,每个交叉路口区域都将变形为原始摄像机视图,并与该位置行人平均大小的候选框相关联。然后,为每个相交区域计算联合占用可能性。在第二步骤中,首先识别必要的候选框,每个候选框覆盖至少一部分前景,而该前景未被另一个候选框覆盖。选择非必要的候选框以按照它们的联合占用可能性的顺序覆盖其余的前景。在基准视频数据集上进行的实验表明,与其他最新方法相比,我们的算法具有良好的性能。

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