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Color Conditional Generation with Sliced Wasserstein Guidance

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abstract

We propose SW-Guidance, a training-free approach for image generation conditioned on the color distribution of a reference image. While it is possible to generate an image with fixed colors by first creating an image from a text prompt and then applying a color style transfer method, this approach often results in semantically meaningless colors in the generated image. Our method solves this problem by modifying the sampling process of a diffusion model to incorporate the differentiable Sliced 1-Wasserstein distance between the color distribution of the generated image and the reference palette. Our method outperforms state-of-the-art techniques for color-conditional generation in terms of color similarity to the reference, producing images that not only match the reference colors but also maintain semantic coherence with the original text prompt. Our source code is available at https://github.com/alobashev/sw-guidance/.

fields

cs.CV 1

years

2025 1

verdicts

CONDITIONAL 1

representative citing papers

Palette Aligned Image Diffusion

cs.CV · 2025-09-02 · conditional · novelty 6.0

Palette-Adapter conditions text-to-image diffusion on a sparse color palette treated as a histogram, with entropy and distance controls and a negative-color guidance mechanism.

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  • Palette Aligned Image Diffusion cs.CV · 2025-09-02 · conditional · none · ref 2025 · internal anchor

    Palette-Adapter conditions text-to-image diffusion on a sparse color palette treated as a histogram, with entropy and distance controls and a negative-color guidance mechanism.