FedLID: Self-Supervised Federated Learning for Leveraging Limited Image Data
Athanasios Psaltis,
Anestis Kastellos,
Charalampos Z. Patrikakis
et al.
Abstract:This study investigates the challenging task of training visual models with very few available data, further complicated by the distribution being imbalanced and scattered across nodes. To address this diverse availability of training data in different federated settings, a customized selfsupervised learning approach tailored specifically for each scenario is being proposed. In particular, a hybrid approach combining self-supervised and supervised learning techniques under a federated umbrella has been utilize… Show more
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