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Cross-domain self-supervised training towards universal representation learning in medical imaging.
Rel. Lia Morra. Politecnico di Torino, Corso di laurea magistrale in Ingegneria Informatica (Computer Engineering), 2023
Abstract
In recent years, the medical field has benefited greatly from the use of machine learning technologies and Deep Learning in particular. More and more tasks are now being performed using these techniques, such as classification and segmentation of lesions, in order to drastically reduce the radiologist's time and effort. Although these algorithms are extremely effective, they require a huge amount of data to generalize due to the diversity of modalities, organs, acquisition devices and clinical tasks. This problem is not trivial, considering that the data must be tagged, which requires a huge investment of time and resources by doctors or radiologists.
A common approach to solving this problem is transfer learning
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