TiBroco: A fast and secure distributed learning framework for tiered wireless edge networks

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Recent proliferation of mobile devices and edge servers (e.g., small base stations) strongly motivates distributed learning at the wireless edge. In this paper, we propose a fast and secure distributed learning framework that utilizes computing resources at edge servers as well as distributed computing devices in tiered wireless edge networks. A fundamental lower bound is derived on the computational load that perfectly tolerates Byzantine attacks at both tiers. TiBroco, a hierarchical coding framework achieving this theoretically minimum computational load is proposed, which guarantees secure distributed learning by combating Byzantines. A fast distributed learning is possible by precisely allocating loads to the computing devices and edge servers, and also utilizing the broadcast nature of wireless devices. Extensive experimental results on Amazon EC2 indicate that our TiBroco allows significantly faster distributed learning than existing methods while guaranteeing full tolerance against Byzantine attacks at both tiers. © 2021 IEEE.
Publisher
Institute of Electrical and Electronics Engineers Inc.
Issue Date
2021-05
Language
English
Citation

40th IEEE Conference on Computer Communications, INFOCOM 2021

ISSN
0743-166X
DOI
10.1109/INFOCOM42981.2021.9488860
URI
http://hdl.handle.net/10203/288797
Appears in Collection
EE-Conference Papers(학술회의논문)
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