One-Shot Federated Learning with Label Differential Privacy
Zikang Chen,
Changli Zhou,
Zhenyu Jiang
Abstract:Federated learning (FL) has emerged as an extremely effective strategy for dismantling data silos and has attracted significant interest from both industry and academia in recent years. However, existing iterative FL approaches often require a large number of communication rounds and struggle to perform well on unbalanced datasets. Furthermore, the increased complexity of networks makes the application of traditional differential privacy to protect client privacy expensive. In this context, the authors introdu… Show more
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