A Fair Federated Learning Framework With Reinforcement Learning
收藏DataCite Commons2026-01-07 更新2025-04-16 收录
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https://service.tib.eu/ldmservice/dataset/a3ab0eea-f937-49bd-8b76-56e46211a684
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资源简介:
Federated learning (FL) is a paradigm where many clients collaboratively train a model under the coordination of a central server, while keeping the training data locally stored. However, heterogeneous data distributions over different clients remain a challenge to mainstream FL algorithms, which may cause slow convergence, overall performance degradation and unfairness of performance across clients.
提供机构:
TIB
创建时间:
2024-12-16



