Exploring Low-Dimensional Subspace in Diffusion Models for Controllable Image Editing

Abstract

Recently, diffusion models have emerged as a powerful class of generative models. Despite their success, there is still limited understanding of their semantic spaces. This makes it challenging to achieve precise and disentangled image generation without additional training, especially in an unsupervised way. In this work, we improve the understanding of their semantic spaces from intriguing observations: among a certain range of noise levels, (1) the learned posterior mean predictor (PMP) in the diffusion model is locally linear, and (2) the singular vectors of its Jacobian lie in low-dimensional semantic subspaces. We provide a solid theoretical basis to justify the linearity and low-rankness in the PMP. These insights allow us to propose an unsupervised, single-step, training-free LOw-rank COntrollable image editing (LOCO Edit) method for precise local editing in diffusion models. LOCO Edit identified editing directions with nice properties: homogeneity, transferability, composability, and linearity. These properties of LOCO Edit benefit greatly from the low-dimensional semantic subspace.Our method can further be extended to unsupervised or text-supervised editing in various text-to-image diffusion models (T-LOCO Edit). Finally, extensive empirical experiments demonstrate the effectiveness and efficiency of LOCO Edit. The code and the arXiv version can be found on the project website.

Cite

Text

Chen et al. "Exploring Low-Dimensional Subspace in Diffusion Models for Controllable Image Editing." Neural Information Processing Systems, 2024. doi:10.52202/079017-0859

Markdown

[Chen et al. "Exploring Low-Dimensional Subspace in Diffusion Models for Controllable Image Editing." Neural Information Processing Systems, 2024.](https://mlanthology.org/neurips/2024/chen2024neurips-exploring/) doi:10.52202/079017-0859

BibTeX

@inproceedings{chen2024neurips-exploring,
  title     = {{Exploring Low-Dimensional Subspace in Diffusion Models for Controllable Image Editing}},
  author    = {Chen, Siyi and Zhang, Huijie and Guo, Minzhe and Lu, Yifu and Wang, Peng and Qu, Qing},
  booktitle = {Neural Information Processing Systems},
  year      = {2024},
  doi       = {10.52202/079017-0859},
  url       = {https://mlanthology.org/neurips/2024/chen2024neurips-exploring/}
}