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Apr, 2024
自适应异构客户端采样用于无线网络上的联邦学习
Adaptive Heterogeneous Client Sampling for Federated Learning over Wireless Networks
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Bing Luo, Wenli Xiao, Shiqiang Wang, Jianwei Huang, Leandros Tassiulas
TL;DR
设计适应性客户采样算法以最小化墙钟收敛时间,从而解决系统和统计异质性对联合学习过程的影响。
Abstract
federated learning
(FL) algorithms usually sample a fraction of clients in each round (partial participation) when the number of participants is large and the server's communication bandwidth is limited. Recent works on the
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