Papers › Federated Learning for Generalization, Robustness, Fairness: A Survey and Benchmark

Federated Learning for Generalization, Robustness, Fairness: A Survey and Benchmark

12 Nov 2023arXiv:2311.06750archive 2025-07-28

Wenke Huang, Mang Ye, Zekun Shi, Guancheng Wan, He Li, Bo Du, Qiang Yang

Federated learning has emerged as a promising paradigm for privacy-preserving collaboration among different parties. Recently, with the popularity of federated learning, an influx of approaches have delivered towards different realistic challenges. In this survey, we provide a systematic overview of the important and recent developments of research on federated learning. Firstly, we introduce the study history and terminology definition of this area. Then, we comprehensively review three basic lines of research: generalization, robustness, and fairness, by introducing their respective background concepts, task settings, and main challenges. We also offer a detailed overview of representative literature on both methods and datasets. We further benchmark the reviewed methods on several well-known datasets. Finally, we point out several open issues in this field and suggest opportunities for further research. We also provide a public website to continuously track developments in this fast advancing field: https://github.com/WenkeHuang/MarsFL.

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conv1x1 wenkehuang/marsfl/Backbones/ResNet_pretrain.py official repository ran no licence file found · pointer only · ac630b6d3f3400fa · report
conv3x3 wenkehuang/marsfl/Backbones/ResNet_pretrain.py official repository ran no licence file found · pointer only · fe58fe326c4a2573 · report
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conv3x3 wenkehuang/marsfl/Backbones/ResNet.py official repository unverified no licence file found · pointer only · 4c2989ace7c5c0da · report
resnet10 wenkehuang/marsfl/Backbones/ResNet.py official repository unverified no licence file found · pointer only · 2b373cd7400656e5 · report

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FairnessFederated LearningPrivacy PreservingSurvey

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