Towards Federated Learning at Scale: System Design

Federated Learning is a distributed machine learning approach which enables model training on a large corpus of decentralized data. We have built a scalable production system for Federated Learning in the domain of mobile devices, based on TensorFlow. In this paper, we describe the resulting high-le...

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Veröffentlicht in:arXiv.org 2019-03
Hauptverfasser: Bonawitz, Keith, Eichner, Hubert, Grieskamp, Wolfgang, Huba, Dzmitry, Ingerman, Alex, Ivanov, Vladimir, Kiddon, Chloe, Konečný, Jakub, Mazzocchi, Stefano, McMahan, H Brendan, Timon Van Overveldt, Petrou, David, Ramage, Daniel, Roselander, Jason
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Sprache:eng
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Zusammenfassung:Federated Learning is a distributed machine learning approach which enables model training on a large corpus of decentralized data. We have built a scalable production system for Federated Learning in the domain of mobile devices, based on TensorFlow. In this paper, we describe the resulting high-level design, sketch some of the challenges and their solutions, and touch upon the open problems and future directions.
ISSN:2331-8422