SYSTEMS, METHODS, AND APPARATUSES FOR IMPLEMENTING SELF-SUPERVISED DOMAIN-ADAPTIVE PRE-TRAINING VIA A TRANSFORMER FOR USE WITH MEDICAL IMAGE CLASSIFICATION

Described herein are systems, methods, and apparatuses for implementing self-supervised domain-adaptive pre-training via a transformer for use with medical image classification in the context of medical image analysis. An exemplary system includes means for receiving a first set of training data hav...

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Bibliographische Detailangaben
Hauptverfasser: Islam, Nahid Ul, Ma, DongAo, Hosseinzadeh Taher, Mohammad Reza, Pang, Jiaxuan, Haghighi, Fatemeh, Liang, Jianming
Format: Patent
Sprache:eng
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Zusammenfassung:Described herein are systems, methods, and apparatuses for implementing self-supervised domain-adaptive pre-training via a transformer for use with medical image classification in the context of medical image analysis. An exemplary system includes means for receiving a first set of training data having non-medical photographic images; receiving a second set of training data with medical images; pre-training an AI model on the first set of training data with the non-medical photographic images; performing domain-adaptive pre-training of the AI model via self-supervised learning operations using the second set of training data having the medical images; generating a trained domain-adapted AI model by fine-tuning the AI model against the targeted medical diagnosis task using the second set of training data having the medical images; outputting the trained domain-adapted AI model; and executing the trained domain-adapted AI model to generate a predicted medical diagnosis from an input image not present within the training data.