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Related Experiment Video

Updated: Jun 11, 2025

Experimental Investigation of the Hierarchical Control in DC Microgrids Using a Real-time Simulator
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Boosting Communication Efficiency in Federated Learning for Multiagent-Based Multimicrogrid Energy Management.

Shangyang He, Yuanzheng Li, Yang Li

    IEEE Transactions on Neural Networks and Learning Systems
    |October 1, 2024
    PubMed
    Summary

    This study introduces a communication-efficient federated learning (CEFL) algorithm to reduce communication burdens in multi-microgrid (MMG) energy management. The CEFL algorithm enhances agent performance by selectively uploading layers and using an aggregation model for parameter updates.

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    Area of Science:

    • Energy Systems
    • Artificial Intelligence
    • Cybersecurity

    Background:

    • User privacy is critical for efficient multi-agent energy management in multi-microgrids (MMGs).
    • Federated learning (FL) offers privacy protection but faces communication burdens and convergence inconsistencies.
    • Layer convergence speed differences in FL can degrade overall agent performance.

    Purpose of the Study:

    • To propose a communication-efficient federated learning (CEFL) algorithm for MMG energy management.
    • To address communication burdens and layer inconsistency problems in existing FL approaches.
    • To enhance the performance and convergence rate of agents in MMG systems.

    Main Methods:

    • Developed a layer evaluation (LE) mechanism using Shapley value (SV) to identify and upload only high-contribution layers.
    • Implemented a communication-efficient parameter aggregation method with an aggregation model (AM) for global model (GM) updates.
    • Validated the CEFL algorithm through numerical analysis of MMGs with 3-8 microgrids.

    Main Results:

    • The proposed CEFL algorithm significantly reduces communication overhead compared to standard FL.
    • CEFL demonstrates improved convergence rates and overall agent performance.
    • Experiments confirmed performance enhancements against four state-of-the-art algorithms.

    Conclusions:

    • The CEFL algorithm effectively balances privacy protection with communication efficiency in MMG energy management.
    • The layer evaluation and aggregation model mechanisms are key to improving FL performance in this context.
    • CEFL offers a promising solution for scalable and efficient decentralized energy management systems.