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首页> 外文期刊>Image Processing, IEEE Transactions on >Segmentation and Tracking Multiple Objects Under Occlusion From Multiview Video
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Segmentation and Tracking Multiple Objects Under Occlusion From Multiview Video

机译:多视点视频遮挡下的分割与跟踪

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摘要

In this paper, we present a multiview approach to segment the foreground objects consisting of a group of people into individual human objects and track them across the video sequence. Depth and occlusion information recovered from multiple views of the scene is integrated into the object detection, segmentation, and tracking processes. Adaptive background penalty with occlusion reasoning is proposed to separate the foreground regions from the background in the initial frame. Multiple cues are employed to segment individual human objects from the group. To propagate the segmentation through video, each object region is independently tracked by motion compensation and uncertainty refinement, and the motion occlusion is tackled as layer transition. The experimental results implemented on both our sequences and other's sequence have demonstrated the algorithm's efficiency in terms of subjective performance. Objective comparison with a state-of-the-art algorithm validates the superior performance of our method quantitatively.
机译:在本文中,我们提出了一种多视图方法,将由一群人组成的前景对象分割为单独的人类对象,并在整个视频序列中对其进行跟踪。从场景的多个视图中恢复的深度和遮挡信息已集成到对象检测,分割和跟踪过程中。提出了一种具有遮挡推理的自适应背景惩罚算法,用于在初始帧中将前景区域与背景区域分开。使用多个提示来从组中分割单个人类对象。为了通过视频传播分割,通过运动补偿和不确定性细化独立地跟踪每个对象区域,并将运动遮挡作为层过渡解决。在我们的序列和其他序列上执行的实验结果证明了该算法在主观性能方面的效率。与最新算法的客观比较可定量地验证我们方法的优越性能。

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