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Sparse time–frequency distributions based on the ℓ1 -norm minimization with the fast intersection of confidence intervals rule (CROSBI ID 255581)

Prilog u časopisu | izvorni znanstveni rad | međunarodna recenzija

Volarić, Ivan ; Sučić, Viktor Sparse time–frequency distributions based on the ℓ1 -norm minimization with the fast intersection of confidence intervals rule // Signal Image and Video Processing, 2019 (2019), 13; 499-506. doi: 10.1007/s11760-018-1375-9

Podaci o odgovornosti

Volarić, Ivan ; Sučić, Viktor

engleski

Sparse time–frequency distributions based on the ℓ1 -norm minimization with the fast intersection of confidence intervals rule

Methods based on the sparsity constraint have been recently introduced to the time–frequency (TF) signal processing, achieving artifact suppression by exploiting the fact that most real-life signals are sparse in the TF domain. In this paper, we propose a sparse reconstruction algorithm based on the two-step iterative shrinkage/thresholding (TwIST) algorithm. In the proposed TwIST algorithm modification, the soft-thresholding value is adaptively determined by the fast intersection of the confidence intervals (FICI) rule in each iteration of the reconstruction algorithm. The FICI rule is used to determine the TF region with the lowest mean value, and the soft- thresholding value is set to the largest sample value inside the region. The performance of the proposed algorithm has been compared to the performance of the state-of-the-art reconstruction algorithms in terms of their execution time and concentration of the resulting TF distribution.

Sparse time–frequency distributions ; Ambiguity function ; Compressive sensing ; Fast intersection of confidence intervals (FICI) rule

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Podaci o izdanju

2019 (13)

2019.

499-506

objavljeno

1863-1703

1863-1711

10.1007/s11760-018-1375-9

Povezanost rada

Elektrotehnika, Računarstvo

Poveznice
Indeksiranost