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==== Federated learning ==== {{Main|Federated learning}} Federated learning is an adapted form of [[distributed artificial intelligence]] to training machine learning models that decentralises the training process, allowing for users' privacy to be maintained by not needing to send their data to a centralised server. This also increases efficiency by decentralising the training process to many devices. For example, [[Gboard]] uses federated machine learning to train search query prediction models on users' mobile phones without having to send individual searches back to [[Google]].<ref>{{Cite web|url=http://ai.googleblog.com/2017/04/federated-learning-collaborative.html|title=Federated Learning: Collaborative Machine Learning without Centralized Training Data|website=Google AI Blog|date=6 April 2017 |language=en|access-date=8 June 2019|archive-date=7 June 2019|archive-url=https://web.archive.org/web/20190607054623/https://ai.googleblog.com/2017/04/federated-learning-collaborative.html|url-status=live}}</ref>
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