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It's All About Your Sketch: Democratising Sketch Control in Diffusion Models

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arxiv 2403.07234 v2 pith:YBWMEWSP submitted 2024-03-12 cs.CV

It's All About Your Sketch: Democratising Sketch Control in Diffusion Models

classification cs.CV
keywords sketchcontrolmodelswhatabstraction-awaredemocratisingdiffusiondiscriminative
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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This paper unravels the potential of sketches for diffusion models, addressing the deceptive promise of direct sketch control in generative AI. We importantly democratise the process, enabling amateur sketches to generate precise images, living up to the commitment of "what you sketch is what you get". A pilot study underscores the necessity, revealing that deformities in existing models stem from spatial-conditioning. To rectify this, we propose an abstraction-aware framework, utilising a sketch adapter, adaptive time-step sampling, and discriminative guidance from a pre-trained fine-grained sketch-based image retrieval model, working synergistically to reinforce fine-grained sketch-photo association. Our approach operates seamlessly during inference without the need for textual prompts; a simple, rough sketch akin to what you and I can create suffices! We welcome everyone to examine results presented in the paper and its supplementary. Contributions include democratising sketch control, introducing an abstraction-aware framework, and leveraging discriminative guidance, validated through extensive experiments.

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