JOURNAL ARTICLE

Distributed constrained consensus least-mean square algorithms with adjustable constraints

Abstract

This paper presents novel constrained consensus least mean square (cLMS) algorithms with adjustable constraints that can improve the learning performance of distributed estimation problems in sensor networks by exploiting the spatial diversity of the estimates. For the first algorithm, the constraint vectors are adjusted by combining the components of the estimate orthogonal to its neighbor estimates. To further speed up the convergence, the second algorithm only uses one of these orthogonal components corresponding to the maximum angle between the estimate and its neighbor estimates to compute the constraint vectors. Simulation results show that both proposed algorithms provide faster convergence than the existing cLMS and diffusion LMS algorithms.

Keywords:
Convergence (economics) Algorithm Constraint (computer-aided design) Computer science Square (algebra) Distributed algorithm Mathematical optimization Mathematics

Metrics

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Cited By
0.31
FWCI (Field Weighted Citation Impact)
28
Refs
0.56
Citation Normalized Percentile
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Citation History

Topics

Advanced Adaptive Filtering Techniques
Physical Sciences →  Engineering →  Computational Mechanics
Blind Source Separation Techniques
Physical Sciences →  Computer Science →  Signal Processing
Speech and Audio Processing
Physical Sciences →  Computer Science →  Signal Processing

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