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Is There a Big Difference Between Federated Learning and Data Centre Learning?
Each device contains data from a small number of the underlying clusters. This is really, i think, a defining characteristic of federated learning compared to something like the data centre setting. The idea is that even though you're still solving a distributed learning problem, you own and can access all of the data. And this could effect some of the convergence guarantees that we have for communication efficient optimize methods in federated settings.