this post was submitted on 25 Mar 2025
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Stable Diffusion

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Abstract

In this paper, we propose LSRNA, a novel framework for higher-resolution (exceeding 1K) image generation using diffusion models by leveraging super-resolution directly in the latent space. Existing diffusion models struggle with scaling beyond their training resolutions, often leading to structural distortions or content repetition. Reference-based methods address the issues by upsampling a low-resolution reference to guide higher-resolution generation. However, they face significant challenges: upsampling in latent space often causes manifold deviation, which degrades output quality. On the other hand, upsampling in RGB space tends to produce overly smoothed outputs. To overcome these limitations, LSRNA combines Latent space Super-Resolution (LSR) for manifold alignment and Region-wise Noise Addition (RNA) to enhance high-frequency details. Our extensive experiments demonstrate that integrating LSRNA outperforms state-of-the-art reference-based methods across various resolutions and metrics, while showing the critical role of latent space upsampling in preserving detail and sharpness. The code is available at this https URL.

Paper: https://arxiv.org/abs/2503.18446

Code: https://github.com/3587jjh/LSRNA (coming soon)

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[โ€“] passepartout@feddit.org 4 points 1 week ago

So this is what they use in crime shows when they zoom in 100x on some potato cam footage from a bodega ๐Ÿค”

[โ€“] MuAraeOracle@real.lemmy.fan 3 points 1 week ago* (last edited 1 week ago) (1 children)

Just try and beat Red Dwarfs enhance scene!

1000023269

https://dai.ly/x5gvi4t

This can't be beat.