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Occlusion handling of visual tracking by fusing multiple visual clues

机译:通过融合多个视觉线索处理视觉跟踪的遮挡

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In this paper, a robust visual tracking system with occlusion handling is proposed to track the target with real-time performance. The thermal camera, which can observe the heat originated from the target such as the human body or vehicle, can collaborate with the color camera to track the target in the cluttered environment or under occlusion. Unlike the general tracking by using the color camera and the thermal camera, which simply verifies the target hypotheses in these two kinds of image domains, a sampling multiple importance resampling scheme is proposed here to efficiently generate the hypotheses and verify them. The better hypotheses in the color and thermal images are selected to evaluate the sparse appearance representation such that the target under severe occlusion can be identified with real-time performance. Using this resampling scheme, the diversity and the convergency are simultaneously considered by adaptively fusing the hypotheses in the color and thermal images. Moreover, the updating strategy of target image model is designed by estimating the occlusion ratio and the environmental similarity such that the robustness of tracking can be greatly increased. Finally, the proposed approaches have been validated in several scenes to present the tracking performance.
机译:在本文中,提出了一种具有遮挡处理的强大视觉跟踪系统,可以实时跟踪目标。可以观察来自诸如人体或车辆之类目标的热量的热像仪可以与彩色热像仪配合使用,以在混乱的环境中或在遮挡下跟踪目标。与通过使用彩色相机和热像仪进行的一般跟踪不同,后者仅在这两种图像域中验证目标假设,而在此提出了一种采样多重要性重采样方案,以有效生成假设并进行验证。选择彩色和热图像中更好的假设以评估稀疏外观表示,以便可以实时性能识别严重遮挡下的目标。使用这种重采样方案,可以通过自适应地融合彩色图像和热图像中的假设,同时考虑多样性和收敛性。此外,通过估计遮挡率和环境相似性来设计目标图像模型的更新策略,从而可以大大提高跟踪的鲁棒性。最后,所提出的方法已经在几个场景中得到验证,以显示跟踪性能。

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