平滑全局局部扭曲:视频稳定使用单应性领域

William X. Liu, Tat-Jun Chin
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引用次数: 7

摘要

从概念上讲,视频稳定是通过估计整个视频中的摄像机轨迹,然后平滑轨迹来实现的。在实践中,流水线总是导致估计更新变换,调整视频的每一帧,使整个序列看起来稳定。因此,我们认为估计好的更新变换比准确地建模和描述相机的运动更重要。基于这一观察,我们建议使用单应性视场进行视频稳定。一个单应性场是一个空间变化的翘曲,它被正则化为尽可能的投影,以便在紧跟底层几何约束的同时实现精确的翘曲。我们表明,单应性场足以满足视频稳定的各种翘曲需求,不仅在稳定的核心步骤中,而且在视频涂漆中。这使得相对简单的算法可以用于运动建模和平滑。我们在各种公开测试视频上展示了我们的视频稳定管道的优点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Smooth Globally Warp Locally: Video Stabilization Using Homography Fields
Conceptually, video stabilization is achieved by estimating the camera trajectory throughout the video and then smoothing the trajectory. In practice, the pipeline invariably leads to estimating update transforms that adjust each frame of the video such that the overall sequence appears to be stabilized. Therefore, we argue that estimating good update transforms is more critical to success than accurately modeling and characterizing the motion of the camera. Based on this observation, we propose the usage of homography fields for video stabilization. A homography field is a spatially varying warp that is regularized to be as projective as possible, so as to enable accurate warping while adhering closely to the underlying geometric constraints. We show that homography fields are powerful enough to meet the various warping needs of video stabilization, not just in the core step of stabilization, but also in video inpainting. This enables relatively simple algorithms to be used for motion modeling and smoothing. We demonstrate the merits of our video stabilization pipeline on various public testing videos.
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