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TeTriRF: Temporal Tri-Plane Radiance Fields for Efficient Free-Viewpoint Video

About

Neural Radiance Fields (NeRF) revolutionize the realm of visual media by providing photorealistic Free-Viewpoint Video (FVV) experiences, offering viewers unparalleled immersion and interactivity. However, the technology's significant storage requirements and the computational complexity involved in generation and rendering currently limit its broader application. To close this gap, this paper presents Temporal Tri-Plane Radiance Fields (TeTriRF), a novel technology that significantly reduces the storage size for Free-Viewpoint Video (FVV) while maintaining low-cost generation and rendering. TeTriRF introduces a hybrid representation with tri-planes and voxel grids to support scaling up to long-duration sequences and scenes with complex motions or rapid changes. We propose a group training scheme tailored to achieving high training efficiency and yielding temporally consistent, low-entropy scene representations. Leveraging these properties of the representations, we introduce a compression pipeline with off-the-shelf video codecs, achieving an order of magnitude less storage size compared to the state-of-the-art. Our experiments demonstrate that TeTriRF can achieve competitive quality with a higher compression rate.

Minye Wu, Zehao Wang, Georgios Kouros, Tinne Tuytelaars• 2023

Related benchmarks

TaskDatasetResultRank
Dynamic 3D ReconstructionN3DV
PSNR (dB)30.65
16
Dynamic Scene ReconstructionMeet Room dataset (test)
PSNR (dB)27.37
15
Novel View SynthesisDyNeRF (test)
PSNR30.43
9
Novel View SynthesisNHR views (5 and 41) (test)
PSNR32.57
6
Novel View SynthesisReRF views (6 and 39) (test)
PSNR30.18
6
Dynamic Scene Reconstruction and CompressionN3DV
Rendering Time (ms)372
5
Dynamic Scene Reconstruction and CompressionN3DV 50
BD-PSNR-1.12
5
Dynamic Scene Reconstruction and CompressionMeetRoom 75
BD-PSNR-0.86
4
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