Multiscale Tensor Decomposition and Rendering Equation Encoding for View Synthesis

Han, Kang, and Xiang, Wei (2023) Multiscale Tensor Decomposition and Rendering Equation Encoding for View Synthesis. In: Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition. pp. 4232-4241. From: CVPR 2023: IEEE/CVF Conference on Computer Vision and Pattern Recognition, 17-24 June 2023, Vancouver, Canada.

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Abstract

Rendering novel views from captured multi-view images has made considerable progress since the emergence of the neural radiance field. This paper aims to further advance the quality of view synthesis by proposing a novel approach dubbed the neural radiance feature field (NRFF). We first propose a multiscale tensor decomposition scheme to organize learnable features so as to represent scenes from coarse to fine scales. We demonstrate many benefits of the proposed multiscale representation, including more accurate scene shape and appearance reconstruction, and faster convergence compared with the single-scale representation. Instead of encoding view directions to model view-dependent effects, we further propose to encode the rendering equation in the feature space by employing the anisotropic spherical Gaussian mixture predicted from the proposed multiscale representation. The proposed NRFF improves state-of-the-art rendering results by over 1 dB in PSNR on both the NeRF and NSVF synthetic datasets. A significant improvement has also been observed on the real-world Tanks & Temples dataset. Code can be found at https://github.com/imkanghan/nrff.

Item ID: 80903
Item Type: Conference Item (Research - E1)
ISBN: 9798350301298
Keywords: 3D from multi-view and sensors
Copyright Information: © 2023 IEEE.
Date Deposited: 01 Feb 2024 02:46
FoR Codes: 46 INFORMATION AND COMPUTING SCIENCES > 4603 Computer vision and multimedia computation > 460304 Computer vision @ 100%
SEO Codes: 22 INFORMATION AND COMMUNICATION SERVICES > 2204 Information systems, technologies and services > 220499 Information systems, technologies and services not elsewhere classified @ 100%
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