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AFFINE TRANSFORMATION-BASED COLOR COMPRESSION FOR DYNAMIC 3D POINT CLOUDS

  • Telecom Sudparis

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

2 Citations (Scopus)

Abstract

Recently, high-quality, humanoid-like 3D point clouds have become extensively used in various use cases related to VR/AR applications. Such high-density point clouds, represented by a huge number of points (e.g., 1 million points) carrying various photometric attributes, require efficient compression techniques for storage and transmission. However, most research works in the literature mainly focus on geometry compression, while only a few consider the spatio-temporal compression of color attributes. In this paper, we propose a novel color attribute prediction method, which exploits a skeleton-based affine motion estimation technique. The skeleton and the motion parameters are compressed in a lossless manner, to preserve accurate color prediction. The color residuals are lossy compressed using a video-based coding solution. Our proposal has been integrated into the Video-based Point Cloud Compression (V-PCC) test model of MPEG. The experimental results demonstrate that the proposed method outperforms the reference V-PCC test model, notably in low bitrate conditions.

Original languageEnglish
Title of host publication2022 IEEE International Conference on Image Processing, ICIP 2022 - Proceedings
PublisherIEEE Computer Society
Pages1556-1560
Number of pages5
ISBN (Electronic)9781665496209
DOIs
Publication statusPublished - 1 Jan 2022
Event29th IEEE International Conference on Image Processing, ICIP 2022 - Bordeaux, France
Duration: 16 Oct 202219 Oct 2022

Publication series

NameProceedings - International Conference on Image Processing, ICIP
ISSN (Print)1522-4880

Conference

Conference29th IEEE International Conference on Image Processing, ICIP 2022
Country/TerritoryFrance
CityBordeaux
Period16/10/2219/10/22

Keywords

  • Point cloud compression
  • affine transformation
  • color prediction
  • motion estimation

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