4.5 Article

Surface Light Field Compression Using a Point Cloud Codec

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/JETCAS.2018.2883479

关键词

Surface light field; point cloud compression; virtual reality; augmented reality; free-viewpoint; full 6DoF

资金

  1. National Natural Science Foundation of China [61872400]
  2. Top-Notch Young Talents Program of China
  3. China Scholarship Council
  4. High-Performance Computing Platform of Peking University

向作者/读者索取更多资源

Light field (LF) representations aim to provide photo-realistic, free-viewpoint viewing experiences. However, the mast popular LF representations are the images from multiple views. Multi-view image-based representations generally need to restrict the range or degrees of freedom of the viewing experience to what can be interpolated in the image domain, essentially because they lack explicit geometry information. We present a new surface LF (SLF) representation based on explicit geometry and a method for SLF compression. First, we map the multi-view images of a scene onto a 3-D geometric point cloud. The color of each point in the point cloud is a function of viewing direction known as a view map. We represent each view map efficiently in a B-Spline wavelet basis. This representation is capable of modeling diverse surface materials and complex lighting conditions in a highly scalable and adaptive manner. The coefficients of the B-Spline wavelet representation are then compressed spatially. To increase the spatial correlation and, thus, improve compression efficiency, we introduce a smoothing term to make the coefficients more similar across the 3-D space. We compress the coefficients spatially using existing point cloud compression methods. On the decoder side, the scene is rendered efficiently from any viewing direction by reconstructing the view map at each point. In contrast to multi-view image-based LF approaches, our method supports photo-realistic rendering of real-world scenes from arbitrary viewpoints, i.e., with an unlimited six degrees of freedom. In terms of rate and distortion, experimental results show that our method achieves superior performance with lighter decoder complexity compared with a reference image-plus-geometry compression scheme, indicating its potential in practical virtual and augmented reality applications.

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