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Marien Renaud

5 accepted papers

2026

Provably Accelerated Imaging with Restarted Inertia and Score-based Image Priors

ICLR 2026poster

Fast convergence and high-quality image recovery are two essential features of algorithms for solving ill-posed imaging inverse problems. Existing methods, such as regularization by denoising (RED), often focus on designing sophisticated image priors to improve reconstruction quality, while leaving…

Cited by 0SourcecodeScholar
2025

From stability of Langevin diffusion to convergence of proximal MCMC for non-log-concave sampling

NeurIPS 2025poster

We consider the problem of sampling distributions stemming from non-convex potentials with Unadjusted Langevin Algorithm (ULA). We prove the stability of the discrete-time ULA to drift approximations under the assumption that the potential is strongly convex at infinity. In many context, e.g. imagin…

Cited by 0SourceScholar
2025

Gradient correlation is a key ingredient to accelerate SGD with momentum

ICLR 2025poster

Empirically, it has been observed that adding momentum to Stochastic Gradient Descent (SGD) accelerates the convergence of the algorithm. However, the literature has been rather pessimistic, even in the case of convex functions, about the possibility of theoretically proving this observation. We inv…

2024

Plug-and-Play Posterior Sampling under Mismatched Measurement and Prior Models

ICLR 2024poster

Posterior sampling has been shown to be a powerful Bayesian approach for solving imaging inverse problems. The recent plug-and-play unadjusted Langevin algorithm (PnP-ULA) has emerged as a promising method for Monte Carlo sampling and minimum mean squared error (MMSE) estimation by combining physica…

2024

Plug-and-Play image restoration with Stochastic deNOising REgularization

ICML 2024poster

Plug-and-Play (PnP) algorithms are a class of iterative algorithms that address image inverse problems by combining a physical model and a deep neural network for regularization. Even if they produce impressive image restoration results, these algorithms rely on a non-standard use of a denoiser on i…