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arXiv AI

[2411.09850] Enhancing Diffusion Posterior Sampling for Inverse Problems by Integrating Crafted Measurements

By Advanced AI EditorJuly 1, 2025No Comments2 Mins Read
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[Submitted on 15 Nov 2024 (v1), last revised 27 Jun 2025 (this version, v2)]

View a PDF of the paper titled Enhancing Diffusion Posterior Sampling for Inverse Problems by Integrating Crafted Measurements, by Shijie Zhou and 5 other authors

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Abstract:Diffusion models have emerged as a powerful foundation model for visual generations. With an appropriate sampling process, it can effectively serve as a generative prior for solving general inverse problems. Current posterior sampling-based methods take the measurement (i.e., degraded image sample) into the posterior sampling to infer the distribution of the target data (i.e., clean image sample). However, in this manner, we show that high-frequency information can be prematurely introduced during the early stages, which could induce larger posterior estimate errors during restoration sampling. To address this observation, we first reveal that forming the log-posterior gradient with the noisy measurement ( i.e., noisy measurement from a diffusion forward process) instead of the clean one can benefit the early posterior sampling. Consequently, we propose a novel diffusion posterior sampling method DPS-CM, which incorporates a Crafted Measurement (i.e., noisy measurement crafted by a reverse denoising process, rather than constructed from the diffusion forward process) to form the posterior estimate. This integration aims to mitigate the misalignment with the diffusion prior caused by cumulative posterior estimate errors. Experimental results demonstrate that our approach significantly improves the overall capacity to solve general and noisy inverse problems, such as Gaussian deblurring, super-resolution, inpainting, nonlinear deblurring, and tasks with Poisson noise, relative to existing approaches. Code is available at: this https URL.

Submission history

From: Shijie Zhou [view email]
[v1]
Fri, 15 Nov 2024 00:06:57 UTC (47,807 KB)
[v2]
Fri, 27 Jun 2025 18:50:55 UTC (43,910 KB)



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