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Diffusion LMS for source and process estimation in sensor networks.

Authors :
Abdolee, Reza
Champagne, Benoit
Sayed, Ali H.
Source :
2012 IEEE Statistical Signal Processing Workshop (SSP); 1/ 1/2012, p165-168, 4p
Publication Year :
2012

Abstract

We develop a least mean-squares (LMS) diffusion strategy for sensor network applications where it is desired to estimate parameters of physical phenomena that vary over space. In particular, we consider a regression model with space-varying parameters that captures the system dynamics over time and space. We use a set of basis functions such as sinusoids or B-spline functions to replace the space-variant (local) parameters with space-invariant (global) parameters, and then apply diffusion adaptation to estimate the global representation. We illustrate the performance of the algorithm via simulations. [ABSTRACT FROM PUBLISHER]

Details

Language :
English
ISBNs :
9781467301824
Database :
Complementary Index
Journal :
2012 IEEE Statistical Signal Processing Workshop (SSP)
Publication Type :
Conference
Accession number :
86572844
Full Text :
https://doi.org/10.1109/SSP.2012.6319649