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FedEff: efficient federated learning with optimal local epochs for heterogeneous clients
1Department of Information Science and Technology, CEG Campus, Anna University, Chennai, India. narmk27@gmail.com.
Federated Learning (FL) efficiency improves by optimizing local epochs per client. This novel approach reduces training time and client waiting, enhancing model convergence in heterogeneous environments.
Area of Science:
- Machine Learning
- Distributed Systems
- Artificial Intelligence
Background:
- Federated Learning (FL) enables collaborative training without data centralization.
- System and statistical heterogeneity across clients often degrade FL efficiency.
- Increasing local epochs can improve efficiency but risks model divergence and slower convergence.
Purpose of the Study:
- To analyze the trade-off between local epochs and model divergence in FL.
- To propose an efficient FL algorithm (FedEff) addressing heterogeneity.
- To reduce client waiting times and overall training duration.
Main Methods:
- Empirical divergence analysis to understand the local epoch trade-off.
- Development of FedEff, a server-side epoch selection mechanism.
- Utilizing Estimated Round Time (ERT) to determine optimal local epochs per client based on client speeds.
Main Results:
- Consistent local updates reduce mean divergence, promoting stable convergence.
- FedEff achieves notable reductions in client waiting times and training duration.
- FedEff outperforms FedAvg and random epoch selection in heterogeneous settings.
Conclusions:
- Optimizing local epochs is crucial for efficient FL under heterogeneity.
- FedEff effectively balances local training and global model convergence.
- The proposed algorithm enhances federated learning performance and efficiency.
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