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VabCut: A Video Extension of GrabCut for Unsupervised Video Foreground Object Segmentation

机译:vabcut:用于无监督视频前景对象分段的Grabcut视频扩展

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This paper introduces VabCut, a video extension of GrabCut, an original unsupervised solution to tackle the video foreground object segmentation task. Vabcut works on an extension of the RGB colour domain to RGBM, where M is the motion. It requires a prior step: the computation of the motion layer (M-layer) of the frame to segment. In order to compute this layer we propose to intersect the frame to segment with N temporally close aligned frames. This paper also introduces a new iterative and collaborative method for an optimal frame alignment, based on points of interest and RANSAC, which automatically discards outliers and refines the homographies in turns. The whole method is fully automatic and can handle standard video, i.e. not professional, shaky, blurry or else. We tested VabCut on the SegTrack 2011 benchmark, and demonstrated its effectiveness, it especially outperforms the state of the art methods while being faster.
机译:本文介绍了Vabcut,Grabcut的视频扩展,原始无监督的解决方案来解决视频前景对象分割任务。 vabcut在RGB彩色域的扩展到RGBM的工作,其中M是运动。它需要先前的步骤:将帧的运动层(M层)的计算计算到段。为了计算该层,我们建议将帧与N instarally关闭对齐帧交叉到段。本文还介绍了一种基于兴趣点和Ransac的最佳帧对齐的新的迭代和协作方法,这会自动丢弃异常值并反过来改进沉默。整个方法是全自动的,可以处理标准视频,即不专业,摇摇欲坠,模糊或其他。我们在Segtrack 2011基准测试中测试了vabcut,并证明了其有效性,特别优于现有技术的状态,同时更快。

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