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research article
Frequency-Domain Diffusion Adaptation Over Networks
January 1, 2021
This paper analyzes the implementation of least-mean-squares (LMS)-based, adaptive diffusion algorithms over networks in the frequency-domain (FD). We focus on a scenario of noisy links and include a moving-average step for denoising after self-learning to enhance performance. The mean-square-error convergence behavior of the resulting algorithm is investigated and the theoretical results are illustrated through simulations. In particular, the proposed denoised recursions are shown to perform favorably when compared with partial diffusion LMS (PD-LMS) and diffusion LMS algorithms, in terms of both complexity and performance.
Type
research article
Web of Science ID
WOS:000704109500010
Author(s)
Date Issued
2021-01-01
Published in
Volume
69
Start page
5419
End page
5430
Subjects
Peer reviewed
REVIEWED
Written at
EPFL
EPFL units
Available on Infoscience
October 23, 2021
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