Denoising Diffusion Restoration Models
–Neural Information Processing Systems
Many interesting tasks in image restoration can be cast as linear inverse problems. A recent family of approaches for solving these problems uses stochastic algorithms that sample from the posterior distribution of natural images given the measurements. However, efficient solutions often require problem-specific supervised training to model the posterior, whereas unsupervised methods that are not problem-specific typically rely on inefficient iterative methods.
Neural Information Processing Systems
Dec-24-2025, 20:12:43 GMT
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