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Integrating Uncertainty Into U-Net Robustness Evaluation Under Natural MRI Alterations: Application to Kidney Segmentation

Contributo in Atti di convegno
Data di Pubblicazione:
2025
Citazione:
(2025). Integrating Uncertainty Into U-Net Robustness Evaluation Under Natural MRI Alterations: Application to Kidney Segmentation . Retrieved from https://hdl.handle.net/10446/305165
Abstract:
The adoption of deep learning (DL) for medical image segmentation in clinical practice is limited by interpretability issues and sensitivity to out-of-distribution data. Robust models that maintain stable accuracy while offering reliable uncertainty estimates in the presence of data variations should be required. We propose a framework to evaluate the robustness of U-Net-based segmentation on a kidney MRI dataset, simulating common abdominal MRI distortions. Robustness is assessed using a novel metric that evaluates both the network’s accuracy stability and uncertainty reliability. The results show that, while segmentation accuracy remains stable across alterations, uncertainty is more sensitive to these changes. This suggests that capturing also uncertainty offers a more comprehensive assessment of DL models than traditional accuracy-focused frameworks.
Tipologia CRIS:
1.4.01 Contributi in atti di convegno - Conference presentations
Elenco autori:
Damiano, Rossella; Scalco, Elisa; Della Vedova, Marco L.; Arrigoni, Alberto; Caroli, Anna; Bombarda, Andrea; Lanzarone, Ettore
Autori di Ateneo:
BOMBARDA Andrea
LANZARONE Ettore
SCALCO Elisa
Link alla scheda completa:
https://aisberg.unibg.it/handle/10446/305165
Titolo del libro:
Lecture Notes in Computer Science
Pubblicato in:
LECTURE NOTES IN COMPUTER SCIENCE
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Settori (2)


Settore IBIO-01/A - Bioingegneria

Settore IINF-05/A - Sistemi di elaborazione delle informazioni
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