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首页> 外文期刊>Journal of visual communication & image representation >Robust bilayer video segmentation by adaptive propagation of global shape and local appearance
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Robust bilayer video segmentation by adaptive propagation of global shape and local appearance

机译:通过自适应传播全局形状和局部外观进行稳健的双层视频分割

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摘要

Segmenting semantic objects of interest from video has long been an active research topic, with a wide range of potential applications. In this paper, we present a bilayer video segmentation method robust to abrupt motion and change in appearance for both the foreground and background. Specifically, based on a few manually segmented keyframes, the proposed method propagates the global shape of the foreground as priors to adjacent frames by applying branch-and-mincut [1], which jointly estimates what is optimal among a set of shapes along with its pose and the corresponding segmentation in the current image. Based on this preliminary segmentation we determine two types of local regions likely to have erroneous results, and apply a probabilistic framework where shape and appearance cues are adaptively emphasized for local refinement. With each successive frame segmentation, the set of shapes applied as priors are incrementally updated. Experimental results support the robustness of the proposed method for obstacles such as background clutter, motion, and appearance changes, from only a small number of user segmented keyframes.
机译:从视频中分割感兴趣的语义对象一直是一个活跃的研究主题,具有广泛的潜在应用。在本文中,我们提出了一种双层视频分割方法,该方法对前景和背景的突然运动和外观变化均具有鲁棒性。具体来说,基于一些手动分割的关键帧,该方法通过应用branch-and-mincut [1]将前景的全局形状作为先验传播到相邻帧,该分支和切分[1]共同估计一组形状及其中的最佳形状姿态和当前图像中的相应分割。基于此初步分割,我们确定了两种可能产生错误结果的局部区域,并应用了一个概率框架,其中形状和外观提示被自适应地强调以进行局部优化。随着每个连续的帧分割,作为先验应用的形状集合被增量更新。实验结果证明了所提出方法对诸如背景杂波,运动和外观变化之类障碍物的鲁棒性,仅来自少数用户分割的关键帧。

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