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Measurement matrix optimization for compressed sensing system with constructed dictionary via takenaka–malmquist functions
Xu, Qiangrong1; Sheng, Zhichao1; Fang, Yong1; Zhang, Liming2
2021-02-09
Source PublicationSENSORS
ISSN1424-8220
Volume21Issue:4Pages:1-14
Abstract

Compressed sensing (CS) has been proposed to improve the efficiency of signal processing by simultaneously sampling and compressing the signal of interest under the assumption that the signal is sparse in a certain domain. This paper aims to improve the CS system performance by constructing a novel sparsifying dictionary and optimizing the measurement matrix. Owing to the adaptability and robustness of the Takenaka–Malmquist (TM) functions in system identification, the use of it as the basis function of a sparsifying dictionary makes the represented signal exhibit a sparser structure than the existing sparsifying dictionaries. To reduce the mutual coherence between the dictionary and the measurement matrix, an equiangular tight frame (ETF) based iterative minimization algorithm is proposed. In our approach, we modify the singular values without changing the properties of the corresponding Gram matrix of the sensing matrix to enhance the independence between the column vectors of the Gram matrix. Simulation results demonstrate the promising performance of the proposed algorithm as well as the superiority of the CS system, designed with the constructed sparsifying dictionary and the optimized measurement matrix, over existing ones in terms of signal recovery accuracy.

KeywordCompressed Sensing (Cs) Sparse Representation The Takenaka–malmquist (Tm) Functions Mutual Coherence Equiangular Tight Frame (Etf)
DOI10.3390/s21041229
URLView the original
Indexed BySCIE
Language英語English
WOS Research AreaChemistry ; Engineering ; Instruments & Instrumentation
WOS SubjectChemistry, Analytical ; Engineering, Electrical & Electronic ; Instruments & Instrumentation
WOS IDWOS:000624653100001
Scopus ID2-s2.0-85100544344
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Document TypeJournal article
CollectionDEPARTMENT OF COMPUTER AND INFORMATION SCIENCE
Corresponding AuthorFang, Yong
Affiliation1.Key Laboratory of Specialty Fiber Optics and Optical Access Networks, Joint International Research Laboratory of Specialty Fiber Optics and Advanced Communication, Shanghai Institute for Advanced Communication and Data Science, Shanghai University
2.Department of Computer and Information Science, Faculty of Science and Technology, University of Macau, Macau 999078, China
Recommended Citation
GB/T 7714
Xu, Qiangrong,Sheng, Zhichao,Fang, Yong,et al. Measurement matrix optimization for compressed sensing system with constructed dictionary via takenaka–malmquist functions[J]. SENSORS, 2021, 21(4), 1-14.
APA Xu, Qiangrong., Sheng, Zhichao., Fang, Yong., & Zhang, Liming (2021). Measurement matrix optimization for compressed sensing system with constructed dictionary via takenaka–malmquist functions. SENSORS, 21(4), 1-14.
MLA Xu, Qiangrong,et al."Measurement matrix optimization for compressed sensing system with constructed dictionary via takenaka–malmquist functions".SENSORS 21.4(2021):1-14.
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