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- W2912213068 abstract "Today’s artificial intelligence still faces two major challenges. One is that, in most industries, data exists in the form of isolated islands. The other is the strengthening of data privacy and security. We propose a possible solution to these challenges: secure federated learning. Beyond the federated-learning framework first proposed by Google in 2016, we introduce a comprehensive secure federated-learning framework, which includes horizontal federated learning, vertical federated learning, and federated transfer learning. We provide definitions, architectures, and applications for the federated-learning framework, and provide a comprehensive survey of existing works on this subject. In addition, we propose building data networks among organizations based on federated mechanisms as an effective solution to allowing knowledge to be shared without compromising user privacy." @default.
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- W2912213068 date "2019-01-28" @default.
- W2912213068 modified "2023-10-17" @default.
- W2912213068 title "Federated Machine Learning" @default.
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- W2912213068 doi "https://doi.org/10.1145/3298981" @default.
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