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- W4367724719 abstract "Federated Learning (FL) is a variant of distributed learning where edge devices collaborate to learn a model without sharing their data with the central server or each other. We refer to the process of training multiple independent models simultaneously in a federated setting using a common pool of clients as multi-model FL. In this work, we propose two variants of the popular FedAvg algorithm for multi-model FL, with provable convergence guarantees. We further show that for the same amount of computation, multi-model FL can have better performance than training each model separately. We supplement our theoretical results with experiments in strongly convex, convex, and non-convex settings." @default.
- W4367724719 created "2023-05-04" @default.
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- W4367724719 date "2023-01-01" @default.
- W4367724719 modified "2023-09-27" @default.
- W4367724719 title "Multi-Model Federated Learning with Provable Guarantees" @default.
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- W4367724719 doi "https://doi.org/10.1007/978-3-031-31234-2_13" @default.
- W4367724719 hasPublicationYear "2023" @default.
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