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Graph-Based Representation for Multiview Image Geometry

机译:基于图形的多视图图像几何表示

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In this paper, we propose a new geometry representation method for multiview image sets. Our approach relies on graphs to describe the multiview geometry information in a compact and controllable way. The links of the graph connect pixels in different images and describe the proximity between pixels in 3D space. These connections are dependent on the geometry of the scene and provide the right amount of information that is necessary for coding and reconstructing multiple views. Our multiview image representation is very compact and adapts the transmitted geometry information as a function of the complexity of the prediction performed at the decoder side. To achieve this, our graph-based representation (GBR) carefully selects the amount of geometry information needed before coding. This is in contrast with depth coding, which directly compresses with losses the original geometry signal, thus making it difficult to quantify the impact of coding errors on geometry-based interpolation. We present the principles of this GBR and we build an efficient coding algorithm to represent it. We compare our GBR approach to classical depth compression methods and compare their respective view synthesis qualities as a function of the compactness of the geometry description. We show that GBR can achieve significant gains in geometry coding rate over depth-based schemes operating at similar quality. Experimental results demonstrate the potential of this new representation.
机译:在本文中,我们提出了一种用于多视图图像集的新几何表示方法。我们的方法依靠图形以紧凑且可控制的方式描述多视图几何信息。图的链接连接不同图像中的像素,并描述3D空间中像素之间的接近度。这些连接取决于场景的几何形状,并提供正确的信息量,这些信息是编码和重建多个视图所必需的。我们的多视图图像表示非常紧凑,并且根据在解码器端执行的预测的复杂性来调整传输的几何信息。为此,我们的基于图形的表示(GBR)会仔细选择编码前所需的几何信息量。这与深度编码相反,深度编码直接损失原始的几何信号,因此很难量化编码错误对基于几何的插值的影响。我们介绍了此GBR的原理,并构建了一种有效的编码算法来表示它。我们将我们的GBR方法与经典的深度压缩方法进行比较,并根据几何描述的紧凑性比较它们各自的视图合成质量。我们表明,GBR可以在以类似质量运行的基于深度的方案上,在几何编码率方面实现显着提高。实验结果证明了这种新表示形式的潜力。

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