Medical image classification using self-supervised learning-based masked autoencoder
Zong Fan,
Zhimin Wang,
Ping Gong
et al.
Abstract:Accurate classification of medical images is crucial for disease diagnosis and treatment planning. Deep learning (DL) methods have gained increasing attention in this domain. However, DL-based classification methods encounter challenges due to the unique characteristics of medical image datasets, including limited amounts of labeled images and large image variations. Self-supervised learning (SSL) has emerged as a solution that learns informative representations from unlabeled data to alleviate the scarcity of… Show more
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