An Efficient Checkpoint Strategy for Federated Learning on Heterogeneous Fault-Prone Nodes
Jeonghun Kim,
Sunggu Lee
Abstract:Federated learning (FL) is a distributed machine learning method in which client nodes train deep neural network models locally using their own training data and then send that trained model to a server, which then aggregates all of the trained models into a globally trained model. This protects personal information while enabling machine learning with vast amounts of data through parallel learning. Nodes that train local models are typically mobile or edge devices from which data can be easily obtained. These… Show more
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