DocumentCode :
1139956
Title :
Toeplitz-Based Iterative Image Reconstruction for MRI With Correction for Magnetic Field Inhomogeneity
Author :
Fessler, Jeffrey A. ; Lee, Sangwoo ; Olafsson, Valur T. ; Shi, Hugo R. ; Noll, Douglas C.
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Univ. of Michigan, Ann Arbor, MI, USA
Volume :
53
Issue :
9
fYear :
2005
Firstpage :
3393
Lastpage :
3402
Abstract :
In some types of magnetic resonance (MR) imaging, particularly functional brain scans, the conventional Fourier model for the measurements is inaccurate. Magnetic field inhomogeneities, which are caused by imperfect main fields and by magnetic susceptibility variations, induce distortions in images that are reconstructed by conventional Fourier methods. These artifacts hamper the use of functional MR imaging (fMRI) in brain regions near air/tissue interfaces. Recently, iterative methods that combine the conjugate gradient (CG) algorithm with nonuniform FFT (NUFFT) operations have been shown to provide considerably improved image quality relative to the conjugate-phase method. However, for non-Cartesian k-space trajectories, each CG-NUFFT iteration requires numerous k-space interpolations; these are operations that are computationally expensive and poorly suited to fast hardware implementations. This paper proposes a faster iterative approach to field-corrected MR image reconstruction based on the CG algorithm and certain Toeplitz matrices. This CG-Toeplitz approach requires k-space interpolations only for the initial iteration; thereafter, only fast Fourier transforms (FFTs) are required. Simulation results show that the proposed CG-Toeplitz approach produces equivalent image quality as the CG-NUFFT method with significantly reduced computation time.
Keywords :
Toeplitz matrices; biomedical MRI; conjugate gradient methods; fast Fourier transforms; image reconstruction; image sampling; interpolation; iterative methods; magnetic fields; magnetic susceptibility; medical image processing; Toeplitz-based iterative image reconstruction; air-tissue interface; brain region; conjugate gradient algorithm; fast Fourier transform method; functional MRI; image sampling; k-space interpolation; magnetic field inhomogeneity correction; magnetic resonance imaging; magnetic susceptibility; Character generation; Image quality; Image reconstruction; Interpolation; Iterative algorithms; Iterative methods; Magnetic field measurement; Magnetic fields; Magnetic resonance; Magnetic resonance imaging; fMRI imaging; magnetic susceptibility; non-Cartesian sampling; spiral trajectory;
fLanguage :
English
Journal_Title :
Signal Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1053-587X
Type :
jour
DOI :
10.1109/TSP.2005.853152
Filename :
1495877
Link To Document :
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