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[ARTICLE · art-105489] src=arxiv.org ↗ pub= topic=machine-learning verified=true sentiment=· neutral

A Plug-in Interpretation of Conditioning in Score-Based Diffusion Models

Researchers propose a conditioning mechanism for score-based diffusion models that uses multi-speed joint diffusion of target and condition, enforcing conditioning at inference via a plug-in correction term. The method, detailed in arXiv:2608.19504v1, derives explicit conditional reverse-time SDEs and approximate probability-flow ODEs, and introduces log-Fokker–Planck residual regularization to improve deterministic ODE sampling. Experiments on conditional image generation show competitive performance and support the effectiveness of the plug-in conditioning view.

read1 min views1 publishedAug 21, 2026

arXiv:2608.19504v1 Announce Type: new Abstract: We propose a conditioning mechanism for diffusion models based on multi-speed joint diffusion of the target and the condition. The mechanism learns an unconditional joint score network and enforces conditioning at inference via a plug-in correction term. The plug-in term separates the conditioning contribution from the learned unconditional dynamics, offering a transparent view of how the condition steers generation of the target distribution. Building on this, we derive explicit conditional reverse-time SDEs and approximate probability-flow ODEs, enabling principled and directly comparable conditional samplers. To reduce the induced ODE--SDE discrepancy, we introduce a log-Fokker--Planck residual regularization that improves ODE sampling quality. Experiments on conditional image generation tasks demonstrate competitive performance and support the effectiveness of the plug-in conditioning view. Additional ODE--SDE comparison experiments show that the log-Fokker--Planck residual regularization improves deterministic ODE sampling.

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