DocumentCode :
623268
Title :
Blind parallel MRI reconstruction with arbitrary k-space trajectories
Author :
Chengpu Yu ; Cishen Zhang ; Lihua Xie
Author_Institution :
Sch. of Electr. & Electron. Eng., Nangyang Technol. Univ., Singapore, Singapore
fYear :
2013
fDate :
19-21 June 2013
Firstpage :
742
Lastpage :
746
Abstract :
This paper presents a new blind reconstruction approach for parallel MR imaging with arbitrary k-space sampling patterns. The provided reconstruction model involves an energy compactness regularization on the discrete cosine transform (DCT) coefficients of the coil sensitivities and a total variation regularization on the desired image. The advantage to choose cosine basis is twofold: the smooth sensitivity function can be well approximated by a small number of cosine bases and the (inverse) discrete cosine transform can be efficiently computed. An augmented Lagrangian based alternating minimization method is then implemented to solve the TV regularized optimization problem, where only fast Fourier transforms and component-wise multiplications (or thresholding) are involved. The experimental results show that the proposed reconstruction approach performs well on blind reconstruction of MR imaging.
Keywords :
biomedical MRI; discrete cosine transforms; fast Fourier transforms; image reconstruction; medical image processing; alternating minimization method; arbitrary k-space trajectory; augmented Lagrangian; blind parallel MRI reconstruction; coil sensitivity; component wise multiplication; discrete cosine transform coefficients; energy compactness regularization; fast Fourier transform; smooth sensitivity function; Biomedical imaging; Coils; Discrete cosine transforms; Image reconstruction; Polynomials; Sensitivity;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Industrial Electronics and Applications (ICIEA), 2013 8th IEEE Conference on
Conference_Location :
Melbourne, VIC
Print_ISBN :
978-1-4673-6320-4
Type :
conf
DOI :
10.1109/ICIEA.2013.6566466
Filename :
6566466
Link To Document :
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