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Automatic Fence Segmentation in Videos of Dynamic Scenes

机译:动态场景视频中的自动栅栏分割

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We present a fully automatic approach to detect and segment fence-like occluders from a video clip. Unlike previous approaches that usually assume either static scenes or cameras, our method is capable of handling both dynamic scenes and moving cameras. Under a bottom-up framework, it first clusters pixels into coherent groups using color and motion features. These pixel groups are then analyzed in a fully connected graph, and labeled as either fence or non-fence using graph-cut optimization. Finally, we solve a dense Conditional Random Filed (CRF) constructed from multiple frames to enhance both spatial accuracy and temporal coherence of the segmentation. Once segmented, one can use existing hole-filling methods to generate a fencefree output. Extensive evaluation suggests that our method outperforms previous automatic and interactive approaches on complex examples captured by mobile devices.
机译:我们提出了一种全自动方法,用于从视频剪辑中检测和分割类似栅栏的封堵器。与通常采用静态场景或摄像机的先前方法不同,我们的方法能够处理动态场景和移动摄像机。在一个自下而上的框架下,它首先使用颜色和运动特征将像素聚类为相干的组。然后,在完全连接的图形中分析这些像素组,并使用图形切割优化将其标记为围墙或非围墙。最后,我们解决了由多个帧构成的密集条件随机场(CRF),以增强分割的空间准确性和时间相干性。分割后,可以使用现有的填孔方法生成无围墙的输出。广泛的评估表明,对于移动设备捕获的复杂示例,我们的方法优于以前的自动和交互式方法。

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