Toward Modality- and Sampling-Universal Learning Strategies for Accelerating Cardiovascular Imaging

Journal Article (2025)
Author(s)

Fanwen Wang (Fudan University, Imperial College London, Royal Brompton Hospital)

Zi Wang (Imperial College London)

Yan Li (Shanghai Jiaotong University School of Medicine)

Jun Lyu (Harvard Medical School)

Chen Qin (Imperial College London)

Shuo Wang (Fudan University)

Kunyuan Guo (Xiamen University)

Mengtin Sun (Fudan University)

Q. Tao (TU Delft - Applied Sciences)

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Research Group
ImPhys/Tao group
DOI related publication
https://doi.org/10.1109/TMI.2025.3641610 Final published version
More Info
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Publication Year
2025
Language
English
Research Group
ImPhys/Tao group
Journal title
IEEE Transactions on Medical Imaging
Issue number
5
Volume number
45
Pages (from-to)
1872-1887
Downloads counter
23
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Abstract

Cardiovascular health is vital to human well-being, and cardiac magnetic resonance (CMR) imaging is considered the clinical reference standard for diagnosing cardiovascular disease. However, its adoption is hindered by long scan times, complex contrasts, and inconsistent quality. While deep learning methods perform well on specific CMR imaging sequences, they often fail to generalize across modalities and sampling schemes. The lack of benchmarks for high-quality, fast CMR image reconstruction further limits technology comparison and adoption. The CMRxRecon2024 challenge, attracting over 200 teams from 18 countries, addressed these issues with two tasks: generalization to unseen modalities and robustness to diverse undersampling patterns. We introduced the largest public multi-modality CMR raw dataset, an open benchmarking platform, and shared code. Analysis of the best-performing solutions revealed that prompt-based adaptation and enhanced physics-driven consistency enabled strong cross-scenario performance. These findings establish principles for generalizable reconstruction models and advance clinically translatable AI in cardiovascular imaging.

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