Papers › On the Trajectory Regularity of ODE-based Diffusion Sampling

On the Trajectory Regularity of ODE-based Diffusion Sampling

18 May 2024arXiv:2405.11326archive 2025-07-28

Defang Chen, Zhenyu Zhou, Can Wang, Chunhua Shen, Siwei Lyu

Diffusion-based generative models use stochastic differential equations (SDEs) and their equivalent ordinary differential equations (ODEs) to establish a smooth connection between a complex data distribution and a tractable prior distribution. In this paper, we identify several intriguing trajectory properties in the ODE-based sampling process of diffusion models. We characterize an implicit denoising trajectory and discuss its vital role in forming the coupled sampling trajectory with a strong shape regularity, regardless of the generated content. We also describe a dynamic programming-based scheme to make the time schedule in sampling better fit the underlying trajectory structure. This simple strategy requires minimal modification to any given ODE-based numerical solvers and incurs negligible computational cost, while delivering superior performance in image generation, especially in 5∼10 function evaluations.

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zju-pi/diff-sampler officialmentioned in papermentioned on GitHubpytorch report
zhyzhouu/amed-solver mentioned on GitHubpytorch report

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DenoisingImage Generation

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Diffusion

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