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Stable Diffusion-based Data Augmentation for Federated Learning with Non-IID Data [PDF]

open access: yes
The proliferation of edge devices has brought Federated Learning (FL) to the forefront as a promising paradigm for decentralized and collaborative model training while preserving the privacy of clients' data.
Morafah, Mahdi   +3 more
core   +1 more source

Non-IID data in Federated Learning: A Survey with Taxonomy, Metrics, Methods, Frameworks and Future Directions

open access: yes
Recent advances in machine learning have highlighted Federated Learning (FL) as a promising approach that enables multiple distributed users (so-called clients) to collectively train ML models without sharing their private data.
Kourtellis, Nicolas   +6 more
core   +1 more source

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