Interpolation-Based Smart Video Stabilization

Semiha Dervişoğlu, Mehmet Sarıgül, Levent Karacan
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引用次数: 1

Abstract

Video stabilization is the process of eliminating unwanted camera movements and shaking in a recorded video. Recently, learning-based video stabilization methods have become very popular. Supervised learning-based approaches need labeled data. For the video stabilization problem, recording both stable and unstable versions of the same video is quite troublesome and requires special hardware. In order to overcome this situation, learning-based interpolation methods that do not need such data have been proposed. In this paper, we review recent learning-based interpolation methods for video stabilization and discuss the shortcomings and potential improvements of them.
基于插值的智能视频稳定
视频防抖是在录制的视频中消除不必要的摄像机运动和抖动的过程。最近,基于学习的视频稳定方法变得非常流行。基于监督学习的方法需要标记数据。对于视频防抖问题,录制稳定版本和不稳定版本的视频是非常麻烦的,需要特殊的硬件。为了克服这种情况,已经提出了不需要这些数据的基于学习的插值方法。本文综述了近年来用于视频稳像的基于学习的插值方法,并讨论了它们的不足和改进潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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