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Rate-Distortion Optimized Graph-Based Representation for Multiview Images With Complex Camera Configurations

机译:率失真优化基于图的具有复杂相机配置的多视图图像表示

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Graph-based representation (GBR) has recently been proposed for describing color and geometry of multiview video content. The graph vertices represent the color information, while the edges represent the geometry information, i.e., the disparity, by connecting corresponding pixels in two camera views. In this paper, we generalize the GBR to multiview images with complex camera configurations. Compared with the existing GBR, the proposed representation can handle not only horizontal displacements of the cameras but also forward/backward translations, rotations, etc. However, contrary to the usual disparity that is a 2-D vector (denoting horizontal and vertical displacements), each edge in GBR is represented by a 1-D disparity. This quantity can be seen as the disparity along an epipolar segment. In order to have a sparse (i.e., easy to code) graph structure, we propose a rate-distortion model to select the most meaningful edges. Hence the graph is constructed with “just enough” information for rendering the given predicted view. The experiments show that the proposed GBR allows high reconstruction quality with lower or equivalent coding rate than traditional depth-based representations.
机译:最近提出了基于图形的表示(GBR),用于描述多视图视频内容的颜色和几何形状。图形顶点表示颜色信息,而边缘表示几何信息,即通过连接两个摄像机视图中的相应像素来表示视差。在本文中,我们将GBR推广到具有复杂相机配置的多视图图像。与现有的GBR相比,提出的表示形式不仅可以处理摄像机的水平位移,而且可以处理向前/向后的平移,旋转等。但是,与通常的视差相反,二维视差(表示水平和垂直位移) ,GBR中的每个边都由一维视差表示。该量可以看作是沿对极线段的差异。为了具有稀疏(即易于编码)的图结构,我们提出了一种速率失真模型来选择最有意义的边缘。因此,该图是用“足够”的信息构造的,用于渲染给定的预测视图。实验表明,与传统的基于深度的表示方法相比,所提出的GBR能够以较低或等效的编码率实现较高的重建质量。

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