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3D Point Cloud Attribute Compression Using Geometry-Guided Sparse Representation

机译:3D点云属性压缩使用几何导向稀疏表示

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摘要

3D point clouds associated with attributes are considered as a promising paradigm for immersive communication. However, the corresponding compression schemes for this media are still in the infant stage. Moreover, in contrast to conventional image/video compression, it is a more challenging task to compress 3D point cloud data, arising from the irregular structure. In this paper, we propose a novel and effective compression scheme for the attributes of voxelized 3D point clouds. In the first stage, an input voxelized 3D point cloud is divided into blocks of equal size. Then, to deal with the irregular structure of 3D point clouds, a geometry-guided sparse representation (GSR) is proposed to eliminate the redundancy within each block, which is formulated as an l(0)-norm regularized optimization problem. Also, an inter-block prediction scheme is applied to remove the redundancy between blocks. Finally, by quantitatively analyzing the characteristics of the resulting transform coefficients by GSR, an effective entropy coding strategy that is tailored to our GSR is developed to generate the bitstream. Experimental results over various benchmark datasets show that the proposed compression scheme is able to achieve better rate-distortion performance and visual quality, compared with state-of-the-art methods.
机译:3D点云与属性相关的被认为是沉浸式沟通的有希望的范式。然而,该媒体的相应压缩方案仍在婴儿阶段。此外,与传统图像/视频压缩相比,从不规则结构引起的3D点云数据是一种更具挑战性的任务。在本文中,我们提出了一种新颖且有效的压缩方案,用于体力化3D点云的属性。在第一阶段,输入的体轴3D点云被分成相等大小的块。然后,为了处理3D点云的不规则结构,提出了一种几何形状引导的稀疏表示(GSR)以消除每个块内的冗余,该块被制定为L(0)-norm正则化优化问题。此外,应用块间预测方案以消除块之间的冗余。最后,通过定量地分析GSR所得到的变换系数的特征,开发了对我们的GSR定制的有效熵编码策略以产生比特流。在各种基准数据集上的实验结果表明,与最先进的方法相比,所提出的压缩方案能够实现更好的速率变形性能和视觉质量。

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