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conference paper

Decentralized learning made easy with DecentralizePy

Dhasade, Akash Balasaheb  
•
Kermarrec, Anne-Marie  
•
Pereira Pires, Rafael  
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May 8, 2023
Proceedings of the 3rd Workshop on Machine Learning and Systems
3rd Workshop on Machine Learning and Systems (EuroMLSys'23)

Decentralized learning (DL) has gained prominence for its potential benefits in terms of scalability, privacy, and fault tolerance. It consists of many nodes that coordinate without a central server and exchange millions of parameters in the inherently iterative process of machine learning (ML) training. In addition, these nodes are connected in complex and potentially dynamic topologies. Assessing the intricate dynamics of such networks is clearly not an easy task. Often in literature, researchers resort to simulated environments that do not scale and fail to capture practical and crucial behaviors, including the ones associated to parallelism, data transfer, network delays, and wall-clock time. In this paper, we propose DecentralizePy, a distributed framework for decentralized ML, which allows for the emulation of large-scale learning networks in arbitrary topologies. We demonstrate the capabilities of DecentralizePy by deploying techniques such as sparsification and secure aggregation on top of several topologies, including dynamic networks with more than one thousand nodes.

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Type
conference paper
DOI
10.1145/3578356.3592587
Author(s)
Dhasade, Akash Balasaheb  
Kermarrec, Anne-Marie  
Pereira Pires, Rafael  
Sharma, Rishi  
Vujasinovic, Milos
Date Issued

2023-05-08

Published in
Proceedings of the 3rd Workshop on Machine Learning and Systems
ISBN of the book

9798400700842

Total of pages

8

Subjects

decentralized learning

•

middleware

•

machine learning

•

distributed systems

•

peer-to-peer

•

network topology

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
SACS  
Event nameEvent placeEvent date
3rd Workshop on Machine Learning and Systems (EuroMLSys'23)

Rome, Italy

May 8th

RelationURL/DOI

IsCitedBy

https://infoscience.epfl.ch/record/302932
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/197011
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