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Privacy and Accuracy Implications of Model Complexity and Integration in Heterogeneous Federated Learning

Federated Learning (FL) has been proposed as a privacy-preserving solution for distributed machine learning, particularly in heterogeneous FL settings where clients have varying computational capabilities and thus train models with different complexities compared to the server’s model. Howeve...

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書誌詳細
主要な著者: Gergely D. Nemeth, Miguel Angel Lozano, Novi Quadrianto, Nuria Oliver
フォーマット: Artigo
言語:Inglês
出版事項: IEEE 2025-01-01
シリーズ:IEEE Access
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オンライン・アクセス:https://ieeexplore.ieee.org/document/10906485/
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