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一种使用非均匀快速傅里叶变换的改进型螺旋MRI网格化方法。

An improved gridding method for spiral MRI using nonuniform fast Fourier transform.

作者信息

Sha Liewei, Guo Hua, Song Allen W

机构信息

Department of Electrical and Computer Engineering, Duke University, USA.

出版信息

J Magn Reson. 2003 Jun;162(2):250-8. doi: 10.1016/s1090-7807(03)00107-1.

Abstract

The algorithm of Liu and Nguyen [IEEE Microw. Guided Wave Lett. 8 (1) (1998) 18; SIAM J. Sci. Comput. 21 (1) (1999) 283] for nonuniform fast Fourier transform (NUFFT) has been extended to two dimensions to reconstruct images using spiral MRI. The new gridding method, called LS_NUFFT, minimizes the reconstruction approximation error in the Least Square sense by generated convolution kernels that fit for the spiral k-space trajectories. For analytical comparison, the LS_NUFFT has been fitted into a consistent framework with the conventional gridding methods using Kaiser-Bessel gridding and a recently proposed generalized FFT (GFFT) approach. Experimental comparison was made by assessing the performance of the LS_NUFFT with that of the standard direct summation method and the Kaiser-Bessel gridding method, using both digital phantom data and in vivo experimental data. Because of the explicitly optimized convolution kernel in LS_NUFFT, reconstruction results showed that the LS_NUFFT yields smaller reconstruction approximation error than the Kaiser-Bessel gridding method, but with the same computation complexity.

摘要

刘和阮的算法[《IEEE微波与导波快报》8(1)(1998)18;《工业与应用数学学会科学计算杂志》21(1)(1999)283]用于非均匀快速傅里叶变换(NUFFT),已扩展到二维,以使用螺旋磁共振成像重建图像。这种新的网格化方法称为LS_NUFFT,通过生成适合螺旋k空间轨迹的卷积核,在最小二乘意义上最小化重建近似误差。为了进行分析比较,LS_NUFFT已被纳入一个与使用凯泽-贝塞尔网格化的传统网格化方法以及最近提出的广义快速傅里叶变换(GFFT)方法一致的框架中。通过使用数字体模数据和体内实验数据,将LS_NUFFT的性能与标准直接求和方法和凯泽-贝塞尔网格化方法的性能进行评估,进行了实验比较。由于LS_NUFFT中明确优化的卷积核,重建结果表明,LS_NUFFT产生的重建近似误差比凯泽-贝塞尔网格化方法小,但计算复杂度相同。

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