DocumentCode :
3126029
Title :
An Efficient MR Image Reconstruction Method for Arbitrary K-space Trajectories Without Density Compensation
Author :
Song, Jiayu ; Liu, Qing H.
fYear :
2006
fDate :
Aug. 30 2006-Sept. 3 2006
Firstpage :
3767
Lastpage :
3770
Abstract :
Non-Cartesian sampling is widely used for fast magnetic resonance imaging (MRI). The well known gridding method usually requires density compensation to adjust the non-uniform sampling density, which is a major source of reconstruction error. Minimum-norm least square (MNLS) reconstruction, on the other hand, does not need density compensation, but requires intensive computations. In this paper, a new version of MNLS reconstruction method is developed using maximum likelihood and is speeded up by incorporating novel non-uniform fast Fourier transform (NUFFT) and bi-conjugate gradient fast Fourier transform (BCG-FFT) techniques. Studies on computer-simulated phantoms and a physically scanned phantom show improved reconstruction accuracy and signal-to-noise ratio compared to gridding method. The method is shown applicable to arbitrary k-space trajectory. Furthermore, we find that the method in fact performs un-blurring in the image space as an equivalent of density compensation in the k-space. Equalizing MNLS solution with gridding algorithm leads to new approaches of finding optimal density compensation functions (DCF). The method has been applied to radially encoded cardiac imaging on small animals. Reconstructed dynamic images of an in vivo mouse heart are shown
Keywords :
biomedical MRI; cardiology; fast Fourier transforms; image reconstruction; image sampling; least squares approximations; maximum likelihood estimation; medical image processing; FFT techniques; MR image reconstruction method; arbitrary K-space trajectories; bi-conjugate gradient fast Fourier transform; computer-simulated phantoms; in vivo mouse heart; magnetic resonance imaging; maximum likelihood method; minimum-norm least square reconstruction; nonCartesian sampling; nonuniform fast Fourier transform; optimal density compensation functions; physically scanned phantom; radially encoded cardiac imaging; signal-to-noise ratio; small animals; Fast Fourier transforms; Grid computing; Image reconstruction; Image sampling; Imaging phantoms; Least squares methods; Magnetic resonance imaging; Physics computing; Reconstruction algorithms; Signal to noise ratio;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Engineering in Medicine and Biology Society, 2006. EMBS '06. 28th Annual International Conference of the IEEE
Conference_Location :
New York, NY
ISSN :
1557-170X
Print_ISBN :
1-4244-0032-5
Electronic_ISBN :
1557-170X
Type :
conf
DOI :
10.1109/IEMBS.2006.260151
Filename :
4462619
Link To Document :
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