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Pregled bibliografske jedinice broj: 527085

A comparison of dictionary based approaches to inpainting with an emphasis to independent component analysis learned dictionaries


Filipović, Marko; Kopriva, Ivica
A comparison of dictionary based approaches to inpainting with an emphasis to independent component analysis learned dictionaries // Inverse problems and imaging, 5 (2011), 4; 815-841 doi:10.3934/ipi.2011.5.815 (međunarodna recenzija, članak, znanstveni)


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Naslov
A comparison of dictionary based approaches to inpainting with an emphasis to independent component analysis learned dictionaries

Autori
Filipović, Marko ; Kopriva, Ivica

Izvornik
Inverse problems and imaging (1930-8337) 5 (2011), 4; 815-841

Vrsta, podvrsta i kategorija rada
Radovi u časopisima, članak, znanstveni

Ključne riječi
Inpainting; denoising; learned basis; independent component analysis; K-SVD; sparse representation

Sažetak
The first contribution of this paper is the comparison of learned dictionary based approaches to inpainting and denoising of images in natural scenes, where emphasis is given on the use of complete and overcomplete dictionary learned by independent component analysis. The second contribution of the paper relates to the formulation of a problem of denoising an image corrupted by a salt and pepper type of noise (this problem is equivalent to estimating saturated pixel values), as a noiseless inpainting problem, whereupon noise corrupted pixels are treated as missing pixels. A maximum a posteriori (MAP) approach to image denoising is not applicable in such a case due to the fact that variance of the impulsive noise is infinite and the MAP based estimation relies on solving an optimization problem with an inequality constraint that depends on the variance of the additive noise. Through extensive comparative performance analysis of the inpainting task, it is demonstrated that ICA-learned basis outperforms K-SVD and morphological component analysis approaches in terms of visual quality. It yielded similar performance as a field of experts method but with more than two orders of magnitude lower computational complexity. On the same problems, Fourier and wavelet bases as representatives of fixed bases, exhibited the poorest performance. It is also demonstrated that noiseless inpainting-based approach to image denoising (estimation of the saturated pixel values) greatly outperforms denoising based on two-dimensional myriad filtering that is a theoretically optimal solution for this class of additive impulsive noise.

Izvorni jezik
Engleski

Znanstvena područja
Matematika



POVEZANOST RADA


Projekti:
098-0982903-2558 - Analiza višespektralih podataka (Kopriva, Ivica, MZOS ) ( CroRIS)

Ustanove:
Institut "Ruđer Bošković", Zagreb

Profili:

Avatar Url Ivica Kopriva (autor)

Avatar Url Marko Filipović (autor)

Citiraj ovu publikaciju:

Filipović, Marko; Kopriva, Ivica
A comparison of dictionary based approaches to inpainting with an emphasis to independent component analysis learned dictionaries // Inverse problems and imaging, 5 (2011), 4; 815-841 doi:10.3934/ipi.2011.5.815 (međunarodna recenzija, članak, znanstveni)
Filipović, M. & Kopriva, I. (2011) A comparison of dictionary based approaches to inpainting with an emphasis to independent component analysis learned dictionaries. Inverse problems and imaging, 5 (4), 815-841 doi:10.3934/ipi.2011.5.815.
@article{article, author = {Filipovi\'{c}, Marko and Kopriva, Ivica}, year = {2011}, pages = {815-841}, DOI = {10.3934/ipi.2011.5.815}, keywords = {Inpainting, denoising, learned basis, independent component analysis, K-SVD, sparse representation}, journal = {Inverse problems and imaging}, doi = {10.3934/ipi.2011.5.815}, volume = {5}, number = {4}, issn = {1930-8337}, title = {A comparison of dictionary based approaches to inpainting with an emphasis to independent component analysis learned dictionaries}, keyword = {Inpainting, denoising, learned basis, independent component analysis, K-SVD, sparse representation} }
@article{article, author = {Filipovi\'{c}, Marko and Kopriva, Ivica}, year = {2011}, pages = {815-841}, DOI = {10.3934/ipi.2011.5.815}, keywords = {Inpainting, denoising, learned basis, independent component analysis, K-SVD, sparse representation}, journal = {Inverse problems and imaging}, doi = {10.3934/ipi.2011.5.815}, volume = {5}, number = {4}, issn = {1930-8337}, title = {A comparison of dictionary based approaches to inpainting with an emphasis to independent component analysis learned dictionaries}, keyword = {Inpainting, denoising, learned basis, independent component analysis, K-SVD, sparse representation} }

Časopis indeksira:


  • Current Contents Connect (CCC)
  • Web of Science Core Collection (WoSCC)
    • Science Citation Index Expanded (SCI-EXP)
    • SCI-EXP, SSCI i/ili A&HCI
  • Scopus


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