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Jan, 2023
FedExP: 通过外推加速联邦平均算法
FedExP: Speeding up Federated Averaging Via Extrapolation
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Divyansh Jhunjhunwala, Shiqiang Wang, Gauri Joshi
TL;DR
通过运用FedExP方法,结合动态变化的伪梯度,可以自适应地决定在联邦学习中的服务器步长,并且实验结果显示在各种实际联邦学习数据集上,FedExP比FedAvg和竞争基线更快地收敛。
Abstract
Federated Averaging (
fedavg
) remains the most popular algorithm for
federated learning
(FL) optimization due to its simple implementation, stateless nature, and privacy guarantees combined with secure aggregation
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