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Blockchained on-device federated learning

Version 2 2024-06-05, 07:15
Version 1 2020-06-01, 00:00
journal contribution
posted on 2024-06-05, 07:15 authored by H Kim, Jihong ParkJihong Park, M Bennis, SL Kim
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.

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Related Materials

Location

Piscataway, N.J.

Language

eng

Publication classification

C1.1 Refereed article in a scholarly journal

Journal

IEEE communications letters

Volume

24

Pagination

1279-1283

ISSN

1089-7798

eISSN

1558-2558

Issue

6

Publisher

IEEE