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Moving Gradients: A Path-Based Method for Plausible Image Interpolation

机译:移动梯度:合理的图像插值基于路径的方法

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摘要

We describe a method for plausible interpolation of images, with a wide range of applications like temporal up-sampling for smooth playback of lower frame rate video, smooth view interpolation, and animation of still images. The method is based on the intuitive idea, that a given pixel in the interpolated frames traces out a path in the source images. Therefore, we simply move and copy pixel gradients from the input images along this path. A key innovation is to allow arbitrary (asymmetric) transition points, where the path moves from one image to the other. This flexible transition preserves the frequency content of the originals without ghosting or blurring, and maintains temporal coherence. Perhaps most importantly, our framework makes occlusion handling particularly simple. The transition points allow for matches away from the occluded regions, at any suitable point along the path. Indeed, occlusions do not need to be handled explicitly at all in our initial graph-cut optimization. Moreover, a simple comparison of computed path lengths after the optimization, allows us to robustly identify occluded regions, and compute the most plausible interpolation in those areas. Finally, we show that significant improvements are obtained by moving gradients and using Poisson reconstruction.
机译:我们描述了一种可能的图像插值方法,具有广泛的应用,例如用于较低帧速率视频的平滑播放的时间上采样,平滑的视图插值和静态图像的动画。该方法基于直观的思想,即插值帧中的给定像素描绘出源图像中的路径。因此,我们只需沿此路径移动并复制来自输入图像的像素渐变。一个关键的创新是允许任意(非对称)过渡点,其中路径从一个图像移动到另一个图像。这种灵活的过渡方式可以保留原稿的频率内容,而不会造成重影或模糊,并保持时间上的连贯性。也许最重要的是,我们的框架使遮挡处理特别简单。过渡点允许沿路径的任何合适点进行远离遮挡区域的匹配。实际上,在我们最初的图形切割优化中根本不需要显式处理遮挡。此外,在优化之后对计算出的路径长度进行简单比较,就可以可靠地识别出被遮挡的区域,并计算出这些区域中最合理的插值。最后,我们证明了通过移动梯度和使用泊松重建可以获得显着的改进。

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