Blockchained On-Device Federated Learning

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Publication:6305329

arXiv1808.03949MaRDI QIDQ6305329

Author name not available (Why is that?)

Publication date: 12 August 2018

Abstract: By leveraging blockchain, this letter proposes a blockchained federated learning (BlockFL) architecture where local learning model updates are exchanged and verified. This enables on-device machine learning without any centralized training data or coordination by utilizing a consensus mechanism in blockchain. Moreover, we analyze an end-to-end latency model of BlockFL and characterize the optimal block generation rate by considering communication, computation, and consensus delays.




Has companion code repository: https://github.com/hanglearning/blockfl_implementation








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