Model-Based Encoding Parameter Optimization for 3D Point Cloud Compression

Qi Liu, Hui Yuan, Junhui Hou, Hao Liu, R. Hamzaoui
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引用次数: 9

Abstract

Rate-distortion optimal 3D point cloud compression is very challenging due to the irregular structure of 3D point clouds. For a popular 3D point cloud codec that uses octrees for geometry compression and JPEG for color compression, we first find analytical models that describe the relationship between the encoding parameters and the bitrate and distortion, respectively. We then use our models to formulate the rate-distortion optimization problem as a constrained convex optimization problem and apply an interior point method to solve it. Experimental results for six 3D point clouds show that our technique gives similar results to exhaustive search at only about 1.57% of its computational cost.
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基于模型的三维点云压缩编码参数优化
由于三维点云的不规则结构,速率失真优化三维点云压缩非常具有挑战性。对于使用八叉树进行几何压缩和JPEG进行颜色压缩的流行3D点云编解码器,我们首先找到了分别描述编码参数与比特率和失真之间关系的分析模型。然后,我们使用我们的模型将率失真优化问题表述为一个约束凸优化问题,并应用内点法来解决它。对6个三维点云的实验结果表明,该方法与穷举搜索的结果相似,而计算成本仅为穷举搜索的1.57%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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