Abstract:Images are indispensable for the automation of highlevel tasks, such as text recognition. Low-light conditions pose a challenge for these high-level perception stacks, which are often optimized on well-lit, artifact-free images. Reconstruction methods for low-light images can produce well-lit counterparts, but typically at the cost of highfrequency details critical for downstream tasks. We propose Diffusion in the Dark (DiD), a diffusion model for lowlight image reconstruction that provides qualitatively compe… Show more
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