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Semi-Automatic 2D-to-3D Conversion Using Disparity Propagation

机译:使用视差传播的半自动2D到3D转换

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Estimating 3D information from an image sequence has long been a challenging problem, especially for dynamic scenes. In this paper, a novel semi-automatic 2D-to-3D conversion method is presented to estimate the disparity maps for regular 2D video shots. Our method requires only a few user-scribbles on very sparse key frames, and then other frames of the video are converted to 3D automatically. Multiple objects are first segmented by the input user-scribbles. Then, the initial disparity map is assigned to each key frame with the aid of various preset disparity models for each object. After the disparity assignment step, disparity maps for other frames of the video are obtained through a disparity propagation strategy taking into account both color similarity and motion information. Finally, the 3D video is synthesized according to the type of 3D display device. Our method is verified on different kinds of challenging sequences containing occlusion, textureless regions, color ambiguity, large displacement movements, etc. The experimental results show that our method has better performance than the state-of-the-art 2D-to-3D conversion systems.
机译:长期以来,从图像序列估计3D信息一直是一个难题,特别是对于动态场景。在本文中,提出了一种新颖的半自动2D到3D转换方法来估计常规2D视频镜头的视差图。我们的方法只需要很少的用户在非常稀疏的关键帧上进行涂鸦,然后将视频的其他帧自动转换为3D。多个对象首先通过输入的用户涂鸦进行细分。然后,借助于针对每个对象的各种预设视差模型,将初始视差图分配给每个关键帧。在视差分配步骤之后,通过同时考虑颜色相似性和运动信息的视差传播策略来获得视频其他帧的视差图。最后,根据3D显示设备的类型合成3D视频。我们的方法在包括遮挡,无纹理区域,颜色模糊,大位移移动等各种挑战性序列上得到了验证。实验结果表明,我们的方法比最新的2D到3D转换具有更好的性能。系统。

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