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CodingFlow: Enable Video Coding for Video Stabilization

机译:CodingFlow:启用视频编码以实现视频稳定

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Video coding focuses on reducing the data size of videos. Video stabilization targets at removing shaky camera motions. In this paper, we enable video coding for video stabilization by constructing the camera motions based on the motion vectors employed in the video coding. The existing stabilization methods rely heavily on image features for the recovery of camera motions. However, feature tracking is time-consuming and prone to errors. On the other hand, nearly all captured videos have been compressed before any further processing and such a compression has produced a rich set of block-based motion vectors that can be utilized for estimating the camera motion. More specifically, video stabilization requires camera motions between two adjacent frames. However, motion vectors extracted from video coding may refer to non-adjacent frames. We first show that these non-adjacent motions can be transformed into adjacent motions such that each coding block within a frame contains a motion vector referring to its adjacent previous frame. Then, we regularize these motion vectors to yield a spatially-smoothed motion field at each frame, named as CodingFlow, which is optimized for a spatially-variant motion compensation. Based on CodingFlow, we finally design a grid-based 2D method to accomplish the video stabilization. Our method is evaluated in terms of efficiency and stabilization quality, both quantitatively and qualitatively, which shows that our method can achieve high-quality results compared with the state-of-the-art methods (feature-based).
机译:视频编码着重于减小视频的数据大小。视频稳定旨在消除抖动的摄像机运动。在本文中,我们通过基于视频编码中使用的运动向量构造摄像机运动来启用视频编码以实现视频稳定。现有的稳定方法在很大程度上依赖于图像特征来恢复摄像机的运动。但是,功能跟踪非常耗时并且容易出错。另一方面,几乎所有捕获的视频在进行任何进一步处理之前都已被压缩,并且这种压缩产生了一组丰富的基于块的运动矢量,可用于估计摄像机运动。更具体地说,视频稳定需要摄像机在两个相邻帧之间移动。然而,从视频编码提取的运动矢量可以指代非相邻帧。我们首先显示这些非相邻运动可以转换为相邻运动,这样一帧内的每个编码块都包含一个参考其相邻前一帧的运动矢量。然后,我们对这些运动向量进行正则化,以在每个帧处生成一个空间平滑的运动场,称为CodingFlow,该场针对空间变​​化运动补偿进行了优化。最后,基于CodingFlow,我们设计了一种基于网格的2D方法来实现视频稳定。我们的方法在效率和稳定度方面都进行了定量和定性的评估,这表明与现有方法(基于功能)相比,我们的方法可以获得高质量的结果。

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