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  6. Decentralized Turbo Bayesian ompressed Sensing with application to UWB Systems
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Decentralized Turbo Bayesian ompressed Sensing with application to UWB Systems

Date Issued
January 1, 2011
Author(s)
Yang, Depeng
Li, Husheng
Peterson, Gregory D  
Permanent URI
https://trace.tennessee.edu/handle/20.500.14382/17128
Abstract

In many situations, there exist plenty of spatial and temporal redundancies in original signals. Based on this observation, a novel Turbo Bayesian Compressed Sensing (TBCS) algorithm is proposed to provide an efficient approach to transfer and incorporate this redundant information for joint sparse signal reconstruction. As a case study, the TBCS algorithm is applied in Ultra-Wideband (UWB) systems. A space-time TBCS structure is developed for exploiting and incorporating the spatial and temporal a priori information for space-time signal reconstruction. Simulation results demonstrate that the proposed TBCS algorithm achieves much better performance with only a few measurements in the presence of noise, compared with the traditional Bayesian Compressed Sensing (BCS) and multitask BCS algorithms.

Disciplines
Electrical and Computer Engineering
Comments

This article has been funded by the University of Tennessee's Open Publishing Support Fund.

Recommended Citation
EURASIP Journal on Advances in Signal Processing 2011, 2011:817947 doi:10.1155/2011/817947
Embargo Date
December 31, 2013
File(s)
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Peterson_DecentralizedTurbo.pdf

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1.61 MB

Format

Adobe PDF

Checksum (MD5)

de3192277f46e31458f71e75ff1a50a3


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