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A Fully Automatic Multi-Vendor AI-System To Segment And Predict Resistance To Treatment Of Rectal Cancer On MRI

Conference Paper
Publication Date:
2024
Short description:
A Fully Automatic Multi-Vendor AI-System To Segment And Predict Resistance To Treatment Of Rectal Cancer On MRI / Panic, J., Defeudis, A., Vassallo, L., Cirillo, S., Gatti, M., Esposito, A., Dell'Aversana, S., Siena, S., Vanzulli, A., Regge, D., Rosati, S., Balestra, G., Giannini, V.. - (2024). (10th World Congress on New Technologies, NewTech 2024 esp 2024) [10.11159/icbb24.120].
abstract:
In this study, we developed and validated a fully automatic system based on pretreatment MRI to predict resistance to therapy in rectal cancer patients using a multi-center and multi-vendor database. Tumors were automatically segmented using in-house automatic U-Net segmentations and subsequently classified as responder and non-responder through a Random Forest algorithm that was fed with a subset of features selected by a customized features selection approach. Despite the strong imbalance between the two classes, the performances yielded are promising, with an area under the curve of 0.72 and a balanced accuracy of 66% on the external validation set. Even if further analyses are still required to improve the performance, our results represent a further step towards a more personalized medicine for patients with rectal cancer.
Iris type:
4.1 Contributo in Atti di convegno
List of contributors:
Panic, J.; Defeudis, A.; Vassallo, L.; Cirillo, S.; Gatti, M.; Esposito, A.; Dell'Aversana, S.; Siena, S.; Vanzulli, A.; Regge, D.; Rosati, S.; Balestra, G.; Giannini, V.
Authors of the University:
ESPOSITO ANTONIO
Handle:
https://iris.unisr.it/handle/20.500.11768/186508
Book title:
Proceedings of the World Congress on New Technologies
Published in:
PROCEEDINGS OF THE WORLD CONGRESS ON NEW TECHNOLOGIES
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