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首页> 外文期刊>Magnetic resonance in medicine: official journal of the Society of Magnetic Resonance in Medicine >Parallel spectroscopic imaging reconstruction with arbitrary trajectories using k-space sparse matrices.
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Parallel spectroscopic imaging reconstruction with arbitrary trajectories using k-space sparse matrices.

机译:使用k空间稀疏矩阵的任意轨迹的并行光谱成像重建。

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摘要

Parallel imaging reconstruction has been successfully applied to magnetic resonance spectroscopic imaging (MRSI) to reduce scan times. For undersampled k-space data on a Cartesian grid, the reconstruction can be achieved in image domain using a sensitivity encoding (SENSE) algorithm for each spectral data point. Alternative methods for reconstruction with undersampled Cartesian k-space data are the SMASH and GRAPPA algorithms that do the reconstruction in the k-space domain. To reconstruct undersampled MRSI data with arbitrary k-space trajectories, image-domain-based iterative SENSE algorithm has been applied at the cost of long computing times. In this paper, a new k-space domain-based parallel spectroscopic imaging reconstruction with arbitrary k-space trajectories using k-space sparse matrices is applied to MRSI with spiral k-space trajectories. The algorithm achieves MRSI reconstruction with reduced memory requirements and computing times. The results are demonstrated in both phantom and in vivo studies. Spectroscopic images very similar to that reconstructed with fully sampled spiral k-space data are obtained at different reduction factors.
机译:并行成像重建已成功应用于磁共振波谱成像(MRSI),以减少扫描时间。对于笛卡尔网格上的欠采样k空间数据,可以使用灵敏度编码(SENSE)算法针对每个光谱数据点在图像域中实现重建。使用欠采样笛卡尔k空间数据进行重建的替代方法是SMASH和GRAPPA算法,它们在k空间域中进行重建。为了重建具有任意k空间轨迹的欠采样MRSI数据,已经应用了基于图像域的迭代SENSE算法,但代价是计算时间长。本文将一种新的基于k空间域的基于k空间稀疏矩阵的任意k空间轨迹的并行光谱成像重建方法应用于具有螺旋k空间轨迹的MRSI。该算法以减少的内存需求和计算时间实现了MRSI重建。结果在幻像和体内研究中均得到证实。在不同的缩小率下获得的光谱图像与完全采样的螺旋k空间数据重建的光谱图像非常相似。

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