基于摄像机运动分类的立体视频重定位

L. Cai, Zhenhua Tang
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引用次数: 0

摘要

现有的立体视频重定向算法通常采用相同的方法进行大小调整,而不考虑具有不同特征的不同视频,导致重构视频的质量较低。为了解决这一问题,我们提出了一种基于摄像机运动分类的立体视频重定向方法,该方法采用不同的重定向策略对立体视频进行重定向。设计了一种自适应立体视频分类方法,根据立体视频左视图提取的运动向量分布来确定摄像机运动类型。此外,我们还开发了一种运动显著性检测方法来消除视频缩放过程中运动物体的抖动。实验结果表明,该方法生成的重定向视频质量明显优于现有方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Stereoscopic Video Retargeting Based on Camera Motion Classification
The existing stereo video retargeting algorithms commonly use a same methodology to perform resizing without considering different videos with various features, leading to the low quality of reconstructed videos. To address this issue, we propose a stereo video retargeting method based on camera motion classification, which employs different retargeting strategies to rescale stereo videos. We also design an adaptive stereo video classification method which determines the types of camera motion according to the distribution of motion vectors extracted from the left view of stereo videos. Besides, we develop a motion saliency detection method to eliminate the jittering of moving objects during video resizing. Experimental results show that the qualities of retargeted videos produced by our method are significantly superior to those of existing methods.
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