A Reality Check of Vision-Language Pre-training in Radiology: Have We Progressed Using Text?

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Résumé

Vision language pre-training has recently gained popularity as it allows learning rich feature representations using large-scale data sources. This paradigm has quickly made its way into the medical image analysis community. In particular, there is an impressive amount of recent literature developing vision-language models for radiology. However, the available medical datasets with image-text supervision are scarce, and medical concepts are fine-grained, involving expert knowledge that existing vision-language models struggle to encode. In this paper, we propose to take a prudent step back from the literature and revisit supervised, unimodal pre-training, using fine-grained labels instead. We conduct an extensive comparison demonstrating that unimodal pre-training is highly competitive and better suited to integrating heterogeneous data sources. Our results also question the potential of recent vision-language models for open-vocabulary generalization, which have been evaluated using optimistic experimental settings. Finally, we study novel alternatives to better integrate fine-grained labels and noisy text supervision. Code and weights are available: https://github.com/jusiro/DLILP.

langue originaleAnglais
titreInformation Processing in Medical Imaging - 29th International Conference, IPMI 2025, Proceedings
rédacteurs en chefIpek Oguz, Shaoting Zhang, Dimitris N. Metaxas
EditeurSpringer Science and Business Media Deutschland GmbH
Pages294-309
Nombre de pages16
ISBN (imprimé)9783031966248
Les DOIs
étatPublié - 2026
Evénement29th International Conference on Information Processing in Medical Imaging, IPMI 2025 - Kos, Grèce
Durée: 25 mai 202530 mai 2025

Série de publications

NomLecture Notes in Computer Science
Volume15830 LNCS
ISSN (imprimé)0302-9743
ISSN (Electronique)1611-3349

Conférence

Conférence29th International Conference on Information Processing in Medical Imaging, IPMI 2025
Pays/TerritoireGrèce
La villeKos
période25/05/2530/05/25

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