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Example-Based Video Stereolization With Foreground Segmentation and Depth Propagation

机译:基于示例的视频立体化,具有前景分割和深度传播

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With advances in 3DTV technology, video stereolization has attracted much attention in recent years. Although video stereolization can enrich stereoscopic 3D contents, it is hard to create good depth maps from monocular 2D videos. In this paper, we propose an automatic example-based video stereolization method with foreground segmentation and depth propagation, called EBVS. To consider both performance and computational complexity, we separately estimate depth maps according to the key and non-key frames. In the key frames, we first estimate an initial depth map based on examples from the RGB-D training data set, then refine it to preserve boundaries of foreground objects. In the non-key frames, we propagate the depth map of the key frame using motion compensation, and generate depth maps. Finally, we employ depth-image-based-rendering (DIBR) to generate stereoscopic views from 2D videos and their depth maps. Extensive experiments verify that the proposed EBVS produces visually pleasing and realistic stereoscopic 3D views from 2D videos.
机译:随着3DTV技术的进步,近年来,视频立体化吸引了很多关注。尽管视频立体化可以丰富立体3D内容,但是很难从单眼2D视频创建良好的深度图。在本文中,我们提出了一种基于自动实例的具有前景分割和深度传播的视频立体化方法,称为EBVS。为了同时考虑性能和计算复杂性,我们根据关键帧和非关键帧分别估计深度图。在关键帧中,我们首先根据RGB-D训练数据集中的示例估计初始深度图,然后对其进行优化以保留前景对象的边界。在非关键帧中,我们使用运动补偿传播关键帧的深度图,并生成深度图。最后,我们采用基于深度图像的渲染(DIBR)从2D视频及其深度图生成立体视图。大量的实验验证了所提出的EBVS从2D视频中产生了视觉上令人愉悦且逼真的立体3D视图。

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