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首页> 外文期刊>IEEE Transactions on Pattern Analysis and Machine Intelligence >Probabilistic Fusion of Stereo with Color and Contrast for Bilayer Segmentation
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Probabilistic Fusion of Stereo with Color and Contrast for Bilayer Segmentation

机译:立体声与颜色和对比度的概率融合用于双层分割

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摘要

This paper describes models and algorithms for the real-time segmentation of foreground from background layers in stereo video sequences. Automatic separation of layers from color/contrast or from stereo alone is known to be error-prone. Here, color, contrast, and stereo matching information are fused to infer layers accurately and efficiently. The first algorithm, Layered Dynamic Programming (LDP), solves stereo in an extended six-state space that represents both foreground/background layers and occluded regions. The stereo-match likelihood is then fused with a contrast-sensitive color model that is learned on-the-fly and stereo disparities are obtained by dynamic programming. The second algorithm, Layered Graph Cut (LGC), does not directly solve stereo. Instead, the stereo match likelihood is marginalized over disparities to evaluate foreground and background hypotheses and then fused with a contrast-sensitive color model like the one used in LDP. Segmentation is solved efficiently by ternary graph cut. Both algorithms are evaluated with respect to ground truth data and found to have similar performance, substantially better than either stereo or color/contrast alone. However, their characteristics with respect to computational efficiency are rather different. The algorithms are demonstrated in the application of background substitution and shown to give good quality composite video output.
机译:本文介绍了在立体视频序列中从背景层实时分割前景的模型和算法。已知自动将层与颜色/对比度或仅与立体分离是容易出错的。在这里,将颜色,对比度和立体匹配信息融合在一起,以准确,高效地推断图层。第一种算法是分层动态编程(LDP),它在表示前景/背景层和遮挡区域的扩展六态空间中求解立体声。然后将立体匹配可能性与动态学习的对比敏感颜色模型融合,并通过动态编程获得立体差异。第二种算法,分层图割(LGC),不能直接求解立体。取而代之的是,将立体匹配可能性在视差上边缘化以评估前景和背景假设,然后与对比敏感的颜色模型(如LDP中使用的模型)融合。通过三元图切割有效地解决了分割问题。两种算法都针对地面真实数据进行了评估,发现它们具有相似的性能,远胜于单独的立体声或色彩/对比度。但是,它们在计算效率方面的特性却大不相同。该算法在背景替换的应用中得到了演示,并显示出了高质量的复合视频输出。

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