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conference paper

Decentralized clustering over adaptive networks

Khawatmi, Sahar
•
Zoubir, Abdelhak M.
•
Sayed, Ali H.  
2015
23rd European Signal Processing Conference (EUSIPCO)
23rd European Signal Processing Conference (EUSIPCO)

Cooperation among agents across the network leads to better estimation accuracy. However, in many network applications the agents infer and track different models of interest in an environment where agents do not know beforehand which models are being observed by their neighbors. In this work, we propose an adaptive and distributed clustering technique that allows agents to learn and form clusters from streaming data in a robust manner. Once clusters are formed, cooperation among agents with similar objectives then enhances the performance of the inference task. The performance of the proposed clustering algorithm is discussed by commenting on the behavior of probabilities of erroneous decision. We validate the performance of the algorithm by numerical simulations, that show how the clustering process enhances the mean-square-error performance of the agents across the net work.

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Type
conference paper
DOI
10.1109/EUSIPCO.2015.7362874
Author(s)
Khawatmi, Sahar
Zoubir, Abdelhak M.
Sayed, Ali H.  
Date Issued

2015

Publisher

IEEE

Published in
23rd European Signal Processing Conference (EUSIPCO)
Start page

2696

End page

2700

Editorial or Peer reviewed

REVIEWED

Written at

OTHER

EPFL units
ASL  
Event nameEvent placeEvent date
23rd European Signal Processing Conference (EUSIPCO)

Nice, France

August 31 - September 4, 2015

Available on Infoscience
December 19, 2017
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/143406
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