Generalized reconstruction of phase contrast MRI: Analysis and correction of the effect of gradient field distortions

被引:114
作者
Markl, M
Bammer, R
Alley, MT
Elkins, CJ
Draney, MT
Barnett, A
Moseley, ME
Glover, GH
Pelc, NJ
机构
[1] Stanford Univ, Dept Radiol, Lucas MRIS Ctr, Palo Alto, CA 94304 USA
[2] Stanford Univ, Dept Mech Engn, Stanford, CA 94305 USA
[3] NIMH, Clin Brain Disorders Branch, CBDB, Bethesda, MD 20892 USA
关键词
gradient field distortions; phase contrast MRI; velocity encoding; flow quantification; image reconstruction;
D O I
10.1002/mrm.10582
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
To characterize gradient field nonuniformity and its effect on velocity encoding in phase contrast (PC) MRI, a generalized model that describes this phenomenon and enables the accurate reconstruction of velocities is presented. In addition to considerable geometric distortions, inhomogeneous gradient fields can introduce deviations from the nominal gradient strength and orientation, and therefore spatially-dependent first gradient moments. Resulting errors in the measured phase shifts used for velocity encoding can therefore cause significant deviations in velocity quantification. The true magnitude and direction of the underlying velocities can be recovered from the phase difference images by a generalized PC velocity reconstruction, which requires the acquisition of full three-directional velocity information. The generalized reconstruction of velocities is applied using a matrix formalism that includes relative gradient field deviations derived from a theoretical model of local gradient field nonuniformity. In addition, an approximate solution for the correction of one-directional velocity encoding is given. Depending on the spatial location of the velocity measurements, errors in velocity magnitude can be as high as 60%, while errors in the velocity encoding direction can be up to 45degrees. Results of phantom measurements demonstrate that effects of gradient field nonuniformity on PC-MRI can be corrected with the proposed method. Published 2003 Wiley-Liss, Inc.(dagger)
引用
收藏
页码:791 / 801
页数:11
相关论文
共 25 条
[1]   Effects of gradient anisotropy in MRI [J].
Aldefeld, B ;
Börnert, P .
MAGNETIC RESONANCE IN MEDICINE, 1998, 39 (04) :606-614
[2]   ANALYSIS OF MACHINE-DEPENDENT AND OBJECT-INDUCED GEOMETRIC DISTORTION IN 2DFT MR IMAGING [J].
BAKKER, CJG ;
MOERLAND, MA ;
BHAGWANDIEN, R ;
BEERSMA, R .
MAGNETIC RESONANCE IMAGING, 1992, 10 (04) :597-608
[3]   RECONSTRUCTIONS OF PHASE-CONTRAST, PHASED-ARRAY MULTICOIL DATA [J].
BERNSTEIN, MA ;
GRGIC, M ;
BROSNAN, TJ ;
PELC, NJ .
MAGNETIC RESONANCE IN MEDICINE, 1994, 32 (03) :330-334
[4]   Evaluation of gradient inhomogeneity in the optimal design of gradient coils [J].
Du, YP ;
Parker, DL .
MAGNETIC RESONANCE IMAGING, 1996, 14 (02) :201-207
[5]   INVIVO VALIDATION OF MR VELOCITY IMAGING [J].
FIRMIN, DN ;
NAYLER, GL ;
KLIPSTEIN, RH ;
UNDERWOOD, SR ;
REES, RSO ;
LONGMORE, DB .
JOURNAL OF COMPUTER ASSISTED TOMOGRAPHY, 1987, 11 (05) :751-756
[6]  
Glover G., 1986, US Patent, Patent No. [4,591,789., 4591789, 4,591,789]
[7]  
Golub G.H., 2013, MATRIX COMPUTATIONS
[8]  
Kannengiesser SAR, 1999, MAGN RESON MED, V42, P585, DOI 10.1002/(SICI)1522-2594(199909)42:3<585::AID-MRM22>3.0.CO
[9]  
2-A
[10]  
Langlois S, 1999, JMRI-J MAGN RESON IM, V9, P821, DOI 10.1002/(SICI)1522-2586(199906)9:6<821::AID-JMRI9>3.0.CO