DeRF: Decomposed Radiance Fields

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Overview

DeRF: Decomposed Radiance Fields

Daniel Rebain, Wei Jiang, Soroosh Yazdani, Ke Li, Kwang Moo Yi, Andrea Tagliasacchi

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Abstract

With the advent of Neural Radiance Fields (NeRF), neural networks can now render novel views of a 3D scene with quality that fools the human eye. Yet, generating these images is very computationally intensive, limiting their applicability in practical scenarios. In this paper, we propose a technique based on spatial decomposition capable of mitigating this issue. Our key observation is that there are diminishing returns in employing larger (deeper and/or wider) networks. Hence, we propose to spatially decompose a scene and dedicate smaller networks for each decomposed part. When working together, these networks can render the whole scene. This allows us near-constant inference time regardless of the number of decomposed parts. Moreover, we show that a Voronoi spatial decomposition is preferable for this purpose, as it is provably compatible with the Painter’s Algorithm for efficient and GPU-friendly rendering. Our experiments show that for real-world scenes, our method provides up to 3x more efficient inference than NeRF (with the same rendering quality), or an improvement of up to 1.0~dB in PSNR (for the same inference cost).

This Repository

This is the open-source code release for our paper "DeRF: Decomposed Radiance Fields". Please note that this repository is provided as a one-time release, and is not being updated or maintained. If you believe that there is a major issue that the authors need to be aware of, please contact us via email.

Launch Commands

python train.py experiment_name llff_fern
python eval.py experiment_name llff_fern eval_results_dir
Owner
UBC Computer Vision Group
University of British Columbia Computer Vision Group
UBC Computer Vision Group
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