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螺旋桨成像中的k空间欠采样

k-space undersampling in PROPELLER imaging.

作者信息

Arfanakis Konstantinos, Tamhane Ashish A, Pipe James G, Anastasio Mark A

机构信息

Department of Biomedical Engineering, Illinois Institute of Technology, 10 West 32nd Street, E1-116, Chicago, IL 60616, USA.

出版信息

Magn Reson Med. 2005 Mar;53(3):675-83. doi: 10.1002/mrm.20380.

Abstract

PROPELLER MRI (periodically rotated overlapping parallel lines with enhanced reconstruction) provides images with significantly fewer B(0)-related artifacts than echo-planar imaging (EPI), as well as reduced sensitivity to motion compared to conventional multiple-shot fast spin-echo (FSE). However, the minimum imaging time in PROPELLER is markedly longer than in EPI and 50% longer than in conventional multiple-shot FSE. Often in MRI, imaging time is reduced by undersampling k-space. In the present study, the effects of undersampling on PROPELLER images were evaluated using simulated and in vivo data sets. Undersampling using PROPELLER patterns with reduced number of samples per line, number of lines per blade, or number of blades per acquisition, while maintaining the same k-space field of view (FOV(k)) and uniform sampling at the edges of FOV(k), reduced imaging time but led to severe image artifacts. In contrast, undersampling by means of removing whole blades from a PROPELLER sampling pattern that sufficiently samples k-space produced only minimal image artifacts, mainly manifested as blurring in directions parallel to the blades removed, even when reducing imaging time by as much as 50%. Finally, undersampling using asymmetric blades and taking advantage of Hermitian symmetries to fill-in the missing data significantly reduced imaging time without causing image artifacts.

摘要

螺旋桨式磁共振成像(周期性旋转重叠平行线并增强重建)所提供图像中的与B(0)相关的伪影明显少于回波平面成像(EPI),并且与传统的多次激发快速自旋回波(FSE)相比,对运动的敏感度也有所降低。然而,螺旋桨式磁共振成像的最短成像时间明显长于EPI,且比传统的多次激发FSE长50%。在磁共振成像中,成像时间常常通过对k空间进行欠采样来缩短。在本研究中,利用模拟数据集和体内数据集评估了欠采样对螺旋桨式磁共振成像图像的影响。使用每行样本数量减少、每个叶片的行数减少或每次采集的叶片数量减少的螺旋桨式采样模式进行欠采样,同时保持相同的k空间视野(FOV(k))并在FOV(k)边缘进行均匀采样,虽缩短了成像时间,但会导致严重的图像伪影。相比之下,从对k空间进行充分采样的螺旋桨式采样模式中移除整个叶片进行欠采样,仅产生最小程度的图像伪影,主要表现为在与移除叶片平行的方向上出现模糊,即使成像时间减少多达50%时也是如此。最后,使用不对称叶片并利用埃尔米特对称性来填充缺失数据进行欠采样,可显著缩短成像时间且不会产生图像伪影。

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