Liu Guoxiang, Ogawa Seiji
Brain Information Group, National Institute of Information and Communications Technology, Kobe, Hyougo, Japan.
J Magn Reson Imaging. 2006 Sep;24(3):683-9. doi: 10.1002/jmri.20672.
To derive and implement a method for correcting geometric distortions and recovering magnetic resonance imaging (MRI) signal losses caused by susceptibility-induced magnetic field gradients (SFGs) in regions with large static field inhomogeneities in echo-planar imaging (EPI).
Factors to account for field inhomogeneities and SFGs were added in a traditional EPI equation that was a simple Fourier transform (FT) for expressing the actual k-space data of an EPI scan. The inverse calculation of this "distorted EPI" equation was used as a kernel to correct geometric distortions and reductions in intensity during reconstruction. A step-by-step EPI reconstruction method was developed to prevent complicated phase unwrapping problems. Some EPI images of phantom and human brains were reconstructed from standard EPI k-spaces.
All images were reconstructed using the proposed multistep method. Geometric distortions were corrected and SFG-induced MRI signal losses were recovered.
Results suggest that applying our method for reconstructing EPI images to reduce distortions and MRI signal losses is feasible.
推导并实施一种方法,用于校正回波平面成像(EPI)中具有大静态场不均匀性区域内由磁化率诱导磁场梯度(SFG)引起的几何畸变并恢复磁共振成像(MRI)信号损失。
在传统EPI方程中加入考虑场不均匀性和SFG的因素,该方程是用于表达EPI扫描实际k空间数据的简单傅里叶变换(FT)。这个“畸变EPI”方程的逆计算被用作内核,以在校正重建过程中的几何畸变和强度降低。开发了一种逐步EPI重建方法以防止复杂的相位解缠问题。从标准EPI k空间重建了一些体模和人脑的EPI图像。
所有图像均使用所提出的多步方法进行重建。几何畸变得到校正,SFG诱导的MRI信号损失得以恢复。
结果表明,应用我们的方法重建EPI图像以减少畸变和MRI信号损失是可行的。