English

ResMatching: Noise-Resilient Computational Super-Resolution via Guided Conditional Flow Matching

Computer Vision and Pattern Recognition 2026-01-28 v3 Artificial Intelligence

Abstract

Computational Super-Resolution (CSR) in fluorescence microscopy has, despite being an ill-posed problem, a long history. At its very core, CSR is about finding a prior that can be used to extrapolate frequencies in a micrograph that have never been imaged by the image-generating microscope. It stands to reason that, with the advent of better data-driven machine learning techniques, stronger prior can be learned and hence CSR can lead to better results. Here, we present ResMatching, a novel CSR method that uses guided conditional flow matching to learn such improved data-priors. We evaluate ResMatching on 4 diverse biological structures from the BioSR dataset and compare its results against 7 baselines. ResMatching consistently achieves competitive results, demonstrating in all cases the best trade-off between data fidelity and perceptual realism. We observe that CSR using ResMatching is particularly effective in cases where a strong prior is hard to learn, e.g. when the given low-resolution images contain a lot of noise. Additionally, we show that ResMatching can be used to sample from an implicitly learned posterior distribution and that this distribution is calibrated for all tested use-cases, enabling our method to deliver a pixel-wise data-uncertainty term that can guide future users to reject uncertain predictions.

Keywords

Cite

@article{arxiv.2510.26601,
  title  = {ResMatching: Noise-Resilient Computational Super-Resolution via Guided Conditional Flow Matching},
  author = {Anirban Ray and Vera Galinova and Florian Jug},
  journal= {arXiv preprint arXiv:2510.26601},
  year   = {2026}
}

Comments

5 pages, 4 figures; Accepted to IEEE ISBI 2026

R2 v1 2026-07-01T07:14:02.762Z