Evaluation of strategies for efficient rate-distortion NeRF streaming
October 25, 2024 Β· Declared Dead Β· π IEEE International Symposium on Multimedia
"No code URL or promise found in abstract"
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Authors
Pedro Martin, AntΓ³nio Rodrigues, JoΓ£o Ascenso, Maria Paula Queluz
arXiv ID
2410.19459
Category
cs.MM: Multimedia
Cross-listed
cs.CV,
eess.IV
Citations
0
Venue
IEEE International Symposium on Multimedia
Last Checked
4 months ago
Abstract
Neural Radiance Fields (NeRF) have revolutionized the field of 3D visual representation by enabling highly realistic and detailed scene reconstructions from a sparse set of images. NeRF uses a volumetric functional representation that maps 3D points to their corresponding colors and opacities, allowing for photorealistic view synthesis from arbitrary viewpoints. Despite its advancements, the efficient streaming of NeRF content remains a significant challenge due to the large amount of data involved. This paper investigates the rate-distortion performance of two NeRF streaming strategies: pixel-based and neural network (NN) parameter-based streaming. While in the former, images are coded and then transmitted throughout the network, in the latter, the respective NeRF model parameters are coded and transmitted instead. This work also highlights the trade-offs in complexity and performance, demonstrating that the NN parameter-based strategy generally offers superior efficiency, making it suitable for one-to-many streaming scenarios.
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