Papers › Universal Guidance for Diffusion Models

Universal Guidance for Diffusion Models

14 Feb 2023arXiv:2302.07121archive 2025-07-28

Arpit Bansal, Hong-Min Chu, Avi Schwarzschild, Soumyadip Sengupta, Micah Goldblum, Jonas Geiping, Tom Goldstein

Typical diffusion models are trained to accept a particular form of conditioning, most commonly text, and cannot be conditioned on other modalities without retraining. In this work, we propose a universal guidance algorithm that enables diffusion models to be controlled by arbitrary guidance modalities without the need to retrain any use-specific components. We show that our algorithm successfully generates quality images with guidance functions including segmentation, face recognition, object detection, and classifier signals. Code is available at https://github.com/arpitbansal297/Universal-Guided-Diffusion.

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arpitbansal297/universal-guided-diffusion officialmentioned in papermentioned on GitHubpytorch report

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1ran · violated contract
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Tasks

Face RecognitionObject Detectionobject-detection

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Methods

Diffusion

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