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Fast Approximate Matching of Videos from Hand-Held Cameras for Robust Background Subtraction

机译:手持摄像机视频的快速近似匹配,可实现可靠的背景扣除

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We identify a novel instance of the background subtraction problem that focuses on extracting near-field foreground objects captured using handheld cameras. Given two user-generated videos of a scene, one with and the other without the foreground object (s), our goal is to efficiently generate an output video with only the foreground object (s) present in it. We cast this challenge as a spatio-temporal frame matching problem, and propose an efficient solution for it that exploits the temporal smoothness of the video sequences. We present theoretical analyses for the error bounds of our approach, and validate our findings using a detailed set of simulation experiments. Finally, we present the results of our approach tested on multiple real videos captured using handheld cameras, and compare them to several alternate foreground extraction approaches.
机译:我们确定了一个关于背景减法问题的新颖实例,其侧重于提取使用手持式摄像机捕获的近场前景对象。给定两个场景的用户生成的视频,一个与另一个没有前景对象的另一个视频,我们的目标是有效地生成输出视频,只有其存在的前景对象。我们将此挑战作为一种时空帧匹配问题,并提出了一种有效的解决方案,用于利用视频序列的时间平滑度。我们呈现了我们方法的错误界限的理论分析,并使用详细的一组模拟实验验证了我们的研究结果。最后,我们介绍了在使用手持式摄像机捕获的多个真实视频上测试的方法的结果,并将它们与几种替代的前景提取方法进行比较。

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