2024
DOI: 10.3390/s24020535
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The Threat of Disruptive Jamming to Blockchain-Based Decentralized Federated Learning in Wireless Networks

Gyungmin Kim,
Yonggang Kim

Abstract: Machine learning techniques have attracted considerable attention for wireless networks because of their impressive performance in complicated scenarios and usefulness in various applications. However, training with and sharing raw data obtained locally from each wireless node does not guarantee privacy and requires a large communication overhead. To mitigate such issues, federated learning (FL), in which sharing parameters for model updates are shared instead of raw data, has been developed. FL has also been … Show more

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