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An Unsupervised Video Foreground Co-Localization and Segmentation Process by Incorporating Motion Cues and Frame Features

机译:通过结合运动提示和帧特征进行无监督的视频前景共定位和分割过程

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Video foreground segmentation is one of the key problems in video processing. In this paper, we proposed a novel and fully unsupervised approach for foreground object co-localization and segmentation of unconstrained videos. We firstly compute both the actual edges and motion boundaries of the video frames, and then align them by their HOG feature maps. Then, by filling the occlusions generated by the aligned edges, we obtained more precise masks about the foreground object. Such motion-based masks could be derived as the motion-based likelihood. Moreover, the color-base likelihood is adopted for the segmentation process. Experimental Results show that our approach outperforms most of the State-of-the-art algorithms.
机译:视频前景分割是视频处理中的关键问题之一。在本文中,我们提出了一种新颖且完全不受监督的方法,用于前景对象的共定位和无约束视频的分割。我们首先计算视频帧的实际边缘和运动边界,然后通过它们的HOG特征图将它们对齐。然后,通过填充对齐边缘生成的遮挡,我们获得了有关前景对象的更精确的蒙版。这样的基于运动的掩模可以被推导为基于运动的可能性。此外,在分割过程中采用了色基似然性。实验结果表明,我们的方法优于大多数最新算法。

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