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conference paper

Distributed Meta-Learning with Networked Agents

Kayaalp, Mert  
•
Vlaski, Stefan  
•
Sayed, Ali H.  
January 1, 2021
29Th European Signal Processing Conference (Eusipco 2021)
29th European Signal Processing Conference (EUSIPCO)

Meta-learning aims to improve efficiency of learning new tasks by exploiting the inductive biases obtained from related tasks. Previous works consider centralized or federated architectures that rely on central processors, whereas, in this paper, we propose a decentralized meta-learning scheme where the data and the computations are distributed across a network of agents. We provide convergence results for non-convex environments and illustrate the theoretical findings with experiments.

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Type
conference paper
DOI
10.23919/EUSIPCO54536.2021.9616256
Web of Science ID

WOS:000764066600271

Author(s)
Kayaalp, Mert  
Vlaski, Stefan  
Sayed, Ali H.  
Date Issued

2021-01-01

Publisher

EUROPEAN ASSOC SIGNAL SPEECH & IMAGE PROCESSING-EURASIP

Publisher place

Kessariani

Published in
29Th European Signal Processing Conference (Eusipco 2021)
ISBN of the book

978-9-0827-9706-0

Series title/Series vol.

European Signal Processing Conference

Start page

1361

End page

1365

Subjects

Acoustics

•

Computer Science, Software Engineering

•

Engineering, Electrical & Electronic

•

Imaging Science & Photographic Technology

•

Telecommunications

•

Computer Science

•

Engineering

•

meta-learning

•

learning to learn

•

multi-agent optimization

•

networked agents

•

distributed learning

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
ASL  
Event nameEvent placeEvent date
29th European Signal Processing Conference (EUSIPCO)

ELECTR NETWORK

Aug 23-27, 2021

Available on Infoscience
April 25, 2022
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/187259
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