DocumentCode :
3755722
Title :
RSCS: Minimum measurement MMV deterministic compressed sensing based on complex reed solomon coding
Author :
Tobias Schnier;Carsten Bockelmann;Armin Dekorsy
Author_Institution :
Department of Communications Engineering, University of Bremen, Germany
fYear :
2015
Firstpage :
483
Lastpage :
487
Abstract :
Compressed Sensing (CS) is an emerging field in communications and mathematics that is used to measure few measurements of long sparse vectors with the ability of lossless reconstruction. In this paper we use methods from channel coding to create the CS recovery algorithm RSCS in the Multiple Measurement Vector case (MMV) that uses a specifically constructed measurement matrix. In particular, we use a modified Reed Solomon encoding-decoding structure to measure sparsely representable vector systems down to the theoretical minimum number of measurements. We prove that the reconstruction is guaranteed, even in the low dimensional case.
Keywords :
"Reed-Solomon codes","Sparse matrices","Decoding","Encoding","Sensors","Atmospheric measurements","Particle measurements"
Publisher :
ieee
Conference_Titel :
Signals, Systems and Computers, 2015 49th Asilomar Conference on
Electronic_ISBN :
1058-6393
Type :
conf
DOI :
10.1109/ACSSC.2015.7421175
Filename :
7421175
Link To Document :
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