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Feature point classification based global motion estimation for video stabilization

机译:基于特征点分类的视频稳定全局运动估计

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摘要

The performance of video stabilization is dependent on the accuracy of global motion estimation between two successive frames. In this paper, we propose a novel method to estimate the global motion accurately using the classified background (BG) feature points (FPs). In the proposed method, global motion estimation and FP classification are jointly performed using both the FP correspondences and the global motion parameters of the previous frame. The experimental results show that video stabilization using the proposed method outperforms the conventional stabilization methods, especially when the moving foreground (FG) objects occupy a large part of the image1.
机译:视频稳定的性能取决于两个连续帧之间的全局运动估计的准确性。在本文中,我们提出了一种使用分类背景(BG)特征点(FPs)准确估计全局运动的新颖方法。在提出的方法中,使用FP对应关系和前一帧的全局运动参数共同执行全局运动估计和FP分类。实验结果表明,该方法在视频稳定方面优于传统的稳定方法,特别是当运动前景(FG)物体占据图像 1 的大部分时。

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