MR Image Reconstruction Based on Iterative Split Bregman Algorithm and Nonlocal Total Variation
2013 ◽
Vol 2013
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pp. 1-16
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Keyword(s):
Mr Image
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This paper introduces an efficient algorithm for magnetic resonance (MR) image reconstruction. The proposed method minimizes a linear combination of nonlocal total variation and least-square data-fitting term to reconstruct the MR images from undersampledk-space data. The nonlocal total variation is taken as theL1-regularization functional and solved using Split Bregman iteration. The proposed algorithm is compared with previous methods in terms of the reconstruction accuracy and computational complexity. The comparison results demonstrate the superiority of the proposed algorithm for compressed MR image reconstruction.
2013 ◽
Vol 9
(3)
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pp. 459-472
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2014 ◽
Vol 2014
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pp. 1-13
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2009 ◽
Vol 56
(4)
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pp. 1134-1142
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2012 ◽
Vol 55
(3-4)
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pp. 939-954
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2014 ◽
Vol 4
(1)
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pp. 21-34
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