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Video Inpainting With Short-Term Windows: Application to Object Removal and Error Concealment

机译:使用短期Windows的视频修复:应用于对象删除和隐藏错误

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摘要

In this paper, we propose a new video inpainting method which applies to both static or free-moving camera videos. The method can be used for object removal, error concealment, and background reconstruction applications. To limit the computational time, a frame is inpainted by considering a small number of neighboring pictures which are grouped into a group of pictures (GoP). More specifically, to inpaint a frame, the method starts by aligning all the frames of the GoP. This is achieved by a region-based homography computation method which allows us to strengthen the spatial consistency of aligned frames. Then, from the stack of aligned frames, an energy function based on both spatial and temporal coherency terms is globally minimized. This energy function is efficient enough to provide high quality results even when the number of pictures in the GoP is rather small, e.g. 20 neighboring frames. This drastically reduces the algorithm complexity and makes the approach well suited for near real-time video editing applications as well as for loss concealment applications. Experiments with several challenging video sequences show that the proposed method provides visually pleasing results for object removal, error concealment, and background reconstruction context.
机译:在本文中,我们提出了一种新的视频修复方法,该方法适用于静态或自由移动的摄像机视频。该方法可用于对象去除,错误隐藏和背景重建应用。为了限制计算时间,通过考虑被分组为一组图片(GoP)的少量相邻图片来修复帧。更具体地,要修复框架,该方法首先对齐GoP的所有框架。这是通过基于区域的单应性计算方法实现的,该方法使我们能够增强对齐帧的空间一致性。然后,从对齐帧的堆栈中,基于空间和时间相干性项的能量函数被全局最小化。即使在GoP中的图片数量很少(例如,像素数不多)时,此能量函数也足够有效以提供高质量的结果。 20个相邻帧。这极大地降低了算法的复杂性,并使该方法非常适合于近实时视频编辑应用程序以及损失隐藏应用程序。在几个具有挑战性的视频序列上进行的实验表明,该方法为目标去除,错误隐藏和背景重建提供了令人愉悦的结果。

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