Papers › DreamFusion: Text-to-3D using 2D Diffusion

DreamFusion: Text-to-3D using 2D Diffusion

29 Sep 2022arXiv:2209.14988archive 2025-07-28

Ben Poole, Ajay Jain, Jonathan T. Barron, Ben Mildenhall

Recent breakthroughs in text-to-image synthesis have been driven by diffusion models trained on billions of image-text pairs. Adapting this approach to 3D synthesis would require large-scale datasets of labeled 3D data and efficient architectures for denoising 3D data, neither of which currently exist. In this work, we circumvent these limitations by using a pretrained 2D text-to-image diffusion model to perform text-to-3D synthesis. We introduce a loss based on probability density distillation that enables the use of a 2D diffusion model as a prior for optimization of a parametric image generator. Using this loss in a DeepDream-like procedure, we optimize a randomly-initialized 3D model (a Neural Radiance Field, or NeRF) via gradient descent such that its 2D renderings from random angles achieve a low loss. The resulting 3D model of the given text can be viewed from any angle, relit by arbitrary illumination, or composited into any 3D environment. Our approach requires no 3D training data and no modifications to the image diffusion model, demonstrating the effectiveness of pretrained image diffusion models as priors.

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Code

Syntology Ran 10 of 11 code samples harvested from 2 repositories linked to this paper; 1 has no recorded run. Of those that ran: 4 ran · our draft was wrong; 6 ran with no contract checked.

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chinhsuanwu/dreamfusionacc mentioned on GitHubpytorch report
muelea/buddi mentioned on GitHubpytorch report
SusungHong/IF-DreamFusion pytorchApache-2.0 report

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4ran · our draft was wrong
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BUDDI muelea/buddi/llib/models/regressors/buddi.py community (archive-listed) ran MIT (permissive) · ca268ca473be1a33 · report
GuidanceEmbedder muelea/buddi/llib/models/regressors/buddi.py community (archive-listed) ran MIT (permissive) · 24e90b5fae9e1139 · report
PositionalEmbedding muelea/buddi/llib/models/regressors/buddi.py community (archive-listed) ran MIT (permissive) · 2a245d7aeebe03eb · report
PositionalEncoding muelea/buddi/llib/models/regressors/buddi.py community (archive-listed) ran MIT (permissive) · 3ef471acb4f26961 · report
TimestepEmbedder muelea/buddi/llib/models/regressors/buddi.py community (archive-listed) ran MIT (permissive) · 7da551910bbe5ecf · report
TimestepEncoding muelea/buddi/llib/models/regressors/buddi.py community (archive-listed) ran MIT (permissive) · ca7edcb03759432b · report
circle_poses chinhsuanwu/dreamfusionacc/dataset/dreamfusion.py community (archive-listed) ran · our draft was wrong MIT (permissive) · c0d38f0243331ae0 · report
get_view_direction chinhsuanwu/dreamfusionacc/dataset/dreamfusion.py community (archive-listed) ran · our draft was wrong fingerprinted MIT (permissive) · b90dcdfe160a18ff · report
rand_poses chinhsuanwu/dreamfusionacc/dataset/dreamfusion.py community (archive-listed) ran · our draft was wrong MIT (permissive) · 076be739d8dbb350 · report
safe_normalize chinhsuanwu/dreamfusionacc/dataset/dreamfusion.py community (archive-listed) ran · our draft was wrong fingerprinted MIT (permissive) · 1c9cf033d080b2e0 · report
DreamFusionLoader chinhsuanwu/dreamfusionacc/dataset/dreamfusion.py community (archive-listed) unverified MIT (permissive) · f7166bc2c8ed7628 · report

Tasks

DenoisingImage GenerationNeRFText to 3D

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Text to 3D T$^3$Bench DreamFusion Avg 21.7 #5 of 6 Archive leaderboard report

Ranks are positions in the archive's leaderboards as they stood at the 2025-07-28 snapshot. Results published since then are not among these rows, so a rank here is not a current standing.

Methods

Diffusion

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