Résumé
Hepatocellular carcinoma is the most spread primary liver cancer across the world (80% of the liver tumors). The gold standard for HCC diagnosis is liver biopsy. However, in the clinical routine, expert radiologists provide a visual diagnosis by interpreting hepatic CT-scans according to a standardized protocol, the LI-RADS, which uses five radiological criteria with an associated decision tree. In this paper, we propose an automatic approach to predict histology-proven HCC from CT images in order to reduce radiologists' inter-variability. We first show that standard deep learning methods fail to accurately predict HCC from CT-scans on a challenging database, and propose a two-step approach inspired by the LI - RADS system to improve the performance. We achieve improvements from 6 to 18 points of AUC with respect to deep learning baselines trained with different architectures. We also provide clinical validation of our method, achieving results that outperform non-expert radiologists and are on par with expert ones.
| langue originale | Anglais |
|---|---|
| titre | ISBI 2025 - 2025 IEEE 22nd International Symposium on Biomedical Imaging, Proceedings |
| Editeur | IEEE Computer Society |
| ISBN (Electronique) | 9798331520526 |
| Les DOIs | |
| état | Publié - 1 janv. 2025 |
| Evénement | 22nd IEEE International Symposium on Biomedical Imaging, ISBI 2025 - Houston, États-Unis Durée: 14 avr. 2025 → 17 avr. 2025 |
Série de publications
| Nom | Proceedings - International Symposium on Biomedical Imaging |
|---|---|
| ISSN (imprimé) | 1945-7928 |
| ISSN (Electronique) | 1945-8452 |
Une conférence
| Une conférence | 22nd IEEE International Symposium on Biomedical Imaging, ISBI 2025 |
|---|---|
| Pays/Territoire | États-Unis |
| La ville | Houston |
| période | 14/04/25 → 17/04/25 |
SDG des Nations Unies
Ce résultat contribue à ou aux Objectifs de développement durable suivants
-
SDG 3 Bonne santé et bien-être
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