DocumentCode :
724993
Title :
An efficient auxiliary variable method for quantification of spin density, R2 decay and field inhomogeneity maps in magnetic resonance imaging
Author :
Chenxi Hu ; Reeves, Stanley J.
Author_Institution :
Magn. Resonance Imaging Res. Center, Auburn Univ., Auburn, AL, USA
fYear :
2015
fDate :
16-19 April 2015
Firstpage :
1065
Lastpage :
1068
Abstract :
Quantification of spin density, R2* decay and off-resonance frequency maps is very important in some applications of magnetic resonance imaging (MRI). To reconstruct these parameter maps, a time-varying model such as mono-exponentials must be used to represent the signal from each voxel. When only a single-shot trajectory is adopted, the underlying reconstruction problem is significantly nonlinear and therefore requires an iterative algorithm. The regularized trust region method previously proposed to address this problem is stable but lacks speed. In this paper, we propose a novel auxiliary variable method that is very efficient in solving the underlying optimization problem. This method introduces an auxiliary variable in the spatial-temporal domain that separates the data fidelity term and the structure fidelity term. The algorithm then alternately optimizes the data fidelity and the structure fidelity to reach the solution. The data fidelity optimization has a closed-form solution and can be solved very efficiently. The structure fidelity optimization fits the exponential model with the auxiliary variable and can also be rapidly computed. Some preliminary comparisons between the auxiliary variable method and the trust region method show that the new method is 10 times faster than the trust region method at a reasonable reconstruction precision.
Keywords :
biomedical MRI; image reconstruction; medical image processing; optimisation; spatiotemporal phenomena; spin-spin relaxation; MRI application; R2* decay map quantification; alternate data fidelity optimization; alternate structure fidelity optimization; auxiliary variable method; closed-form solution; data fidelity term; exponential model fitting; field inhomogeneity map quantification; iterative algorithm; magnetic resonance imaging; monoexponential model; nonlinear reconstruction problem; off-resonance frequency map quantification; optimization problem; parameter map reconstruction; reconstruction precision; regularized trust region method; single-shot trajectory; spatial-temporal domain; spin density map quantification; structure fidelity term; time-varying model; voxel signal representatopm; Cost function; Image reconstruction; Joints; Magnetic resonance imaging; Noise; Trajectory; Auxiliary variable method; MRI; image reconstruction; variable splitting;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Biomedical Imaging (ISBI), 2015 IEEE 12th International Symposium on
Conference_Location :
New York, NY
Type :
conf
DOI :
10.1109/ISBI.2015.7164055
Filename :
7164055
Link To Document :
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