Greedy Orthogonal Matching Pursuit algorithm for sparse signal recovery in compressive sensing

The sparse signal recovery problem has been the subject of extensive research in several different communities. Tractable recovery algorithm is a crucial and fundamental theme of compressive sensing (CS), which has drawn significant interests in the last few years. In this paper, we firstly analyze...

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Published in2014 IEEE International Instrumentation and Measurement Technology Conference (I2MTC) Proceedings pp. 1355 - 1358
Main Authors Jia Li, Zhaojun Wu, Hongqi Feng, Qiang Wang, Yipeng Liu
Format Conference Proceeding
LanguageEnglish
Published IEEE 01.05.2014
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ISSN1091-5281
DOI10.1109/I2MTC.2014.6860967

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Abstract The sparse signal recovery problem has been the subject of extensive research in several different communities. Tractable recovery algorithm is a crucial and fundamental theme of compressive sensing (CS), which has drawn significant interests in the last few years. In this paper, we firstly analyze the iterative residual in Orthogonal Matching Pursuit (OMP) algorithm. Secondly, a greedier algorithm is introduced, which is called Greedy OMP (GOMP) algorithm. This algorithm iteratively identifies more than one atoms using greedy atom identification, and then discards some atoms, which are of high similarity with the optimal atom. Compared with OMP algorithm, the experiments conducted on Gaussian and Zero-one sparse signal demonstrate that the proposed GOMP algorithm can provide better recovery performance. Finally, we experimentally investigate the effect of greedy constant in GOMP upon the recovery performance.
AbstractList The sparse signal recovery problem has been the subject of extensive research in several different communities. Tractable recovery algorithm is a crucial and fundamental theme of compressive sensing (CS), which has drawn significant interests in the last few years. In this paper, we firstly analyze the iterative residual in Orthogonal Matching Pursuit (OMP) algorithm. Secondly, a greedier algorithm is introduced, which is called Greedy OMP (GOMP) algorithm. This algorithm iteratively identifies more than one atoms using greedy atom identification, and then discards some atoms, which are of high similarity with the optimal atom. Compared with OMP algorithm, the experiments conducted on Gaussian and Zero-one sparse signal demonstrate that the proposed GOMP algorithm can provide better recovery performance. Finally, we experimentally investigate the effect of greedy constant in GOMP upon the recovery performance.
Author Jia Li
Hongqi Feng
Yipeng Liu
Qiang Wang
Zhaojun Wu
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  surname: Zhaojun Wu
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  surname: Qiang Wang
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  organization: Dept. of Control Sci. & Eng., Harbin Inst. of Technol., Harbin, China
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  surname: Yipeng Liu
  fullname: Yipeng Liu
  organization: Dept. of Control Sci. & Eng., Harbin Inst. of Technol., Harbin, China
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Snippet The sparse signal recovery problem has been the subject of extensive research in several different communities. Tractable recovery algorithm is a crucial and...
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StartPage 1355
SubjectTerms Algorithm design and analysis
Approximation algorithms
Atomic measurements
Compressed sensing
Compressive sensing
Matching pursuit algorithms
measurement matrix
orthogonal matching pursuit
Sparse matrices
sparse signal reconstruction
Vectors
Title Greedy Orthogonal Matching Pursuit algorithm for sparse signal recovery in compressive sensing
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