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A Generic Scheme for Progressive Point Cloud Coding

机译:渐进点云编码的通用方案

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摘要

In this paper, we propose a generic point cloud encoder that provides a unified framework for compressing different attributes of point samples corresponding to 3D objects with arbitrary topology. In the proposed scheme, the coding process is led by an iterative octree cell subdivision of the object space. At each level of subdivision, positions of point samples are approximated by the geometry centers of all tree-front cells while normals and colors are approximated by their statistical average within each of tree-front cells. With this framework, we employ attribute-dependent encoding techniques to exploit different characteristics of various attributes. All of these have led to significant improvement in the rate-distortion (R-D) performance and a computational advantage over the state of the art. Furthermore, given sufficient levels of octree expansion, normal space partitioning and resolution of color quantization, the proposed point cloud encoder can be potentially used for lossless coding of 3D point clouds.
机译:在本文中,我们提出了一种通用的点云编码器,该编码器提供了一个统一的框架,用于以任意拓扑压缩对应于3D对象的点样本的不同属性。在提出的方案中,编码过程由对象空间的迭代八叉树单元细分来领导。在每个细分级别,点样本的位置由所有树前单元的几何中心近似,而法线和颜色由它们在每个树前单元内的统计平均值近似。在此框架下,我们采用依赖属性的编码技术来利用各种属性的不同特征。所有这些都导致速率失真(R-D)性能的显着提高以及与现有技术相比的计算优势。此外,给定足够的八叉树扩展水平,正常空间划分和色彩量化分辨率,建议的点云编码器可潜在地用于3D点云的无损编码。

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