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本文引用的文献

1
Introduction to: A k-space analysis of small-tip-angle excitation.介绍:小角度激发的 k 空间分析。
J Magn Reson. 2011 Dec;213(2):558-9. doi: 10.1016/j.jmr.2011.08.008. Epub 2011 Sep 3.
2
Reduction of flow artifacts by using partial saturation in RF-spoiled gradient-echo imaging.使用射频预饱和梯度回波成像中的部分饱和来减少流动伪影。
Magn Reson Med. 2011 May;65(5):1326-34. doi: 10.1002/mrm.22729. Epub 2011 Feb 11.
3
Optimizing saturation-recovery measurements of the longitudinal relaxation rate under time constraints.在时间限制下优化纵向弛豫率的饱和恢复测量。
Magn Reson Med. 2009 Nov;62(5):1202-10. doi: 10.1002/mrm.22111.
4
Multiple repetition time balanced steady-state free precession imaging.多重复时间平衡稳态自由进动成像。
Magn Reson Med. 2009 Jul;62(1):193-204. doi: 10.1002/mrm.21990.
5
Parameter relations for the Shinnar-Le Roux selective excitation pulse design algorithm [NMR imaging].Shinnar-Le Roux 选择激发脉冲设计算法的参数关系 [NMR 成像]。
IEEE Trans Med Imaging. 1991;10(1):53-65. doi: 10.1109/42.75611.
6
Wideband SSFP: alternating repetition time balanced steady state free precession with increased band spacing.宽带稳态自由进动序列:具有增加带宽间隔的交替重复时间平衡稳态自由进动序列。
Magn Reson Med. 2007 Nov;58(5):931-8. doi: 10.1002/mrm.21296.
7
Reduction of transmitter B1 inhomogeneity with transmit SENSE slice-select pulses.使用发射敏感编码(SENSE)切片选择脉冲减少发射机B1不均匀性。
Magn Reson Med. 2007 May;57(5):842-7. doi: 10.1002/mrm.21221.
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Actual flip-angle imaging in the pulsed steady state: a method for rapid three-dimensional mapping of the transmitted radiofrequency field.脉冲稳态下的实际翻转角成像:一种用于快速三维映射传输射频场的方法。
Magn Reson Med. 2007 Jan;57(1):192-200. doi: 10.1002/mrm.21120.
9
Alternating repetition time balanced steady state free precession.交替重复时间平衡稳态自由进动
Magn Reson Med. 2006 Mar;55(3):557-65. doi: 10.1002/mrm.20790.
10
Iterative RF pulse design for multidimensional, small-tip-angle selective excitation.用于多维、小翻转角选择性激发的迭代射频脉冲设计
Magn Reson Med. 2005 Oct;54(4):908-17. doi: 10.1002/mrm.20631.

使用非层面选择定制 tip-up 脉冲和射频扰相的小 tips 快速恢复成像。

Small-tip fast recovery imaging using non-slice-selective tailored tip-up pulses and radiofrequency-spoiling.

机构信息

Department of Biomedical Engineering, University of Michigan, Ann Arbor, Michigan, USA.

出版信息

Magn Reson Med. 2013 Mar 1;69(3):657-66. doi: 10.1002/mrm.24289. Epub 2012 Apr 17.

DOI:10.1002/mrm.24289
PMID:22511367
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3408566/
Abstract

Small-tip fast recovery (STFR) imaging is a new steady-state imaging sequence that is a potential alternative to balanced steady-state free precession. Under ideal imaging conditions, STFR may provide comparable signal-to-noise ratio and image contrast as balanced steady-state free precession, but without signal variations due to resonance offset. STFR relies on a tailored "tip-up," or "fast recovery," radiofrequency pulse to align the spins with the longitudinal axis after each data readout segment. The design of the tip-up pulse is based on the acquisition of a separate off-resonance (B0) map. Unfortunately, the design of fast (a few ms) slice- or slab-selective radiofrequency pulses that accurately tailor the excitation pattern to the local B0 inhomogeneity over the entire imaging volume remains a challenging and unsolved problem. We introduce a novel implementation of STFR imaging based on "non-slice-selective" tip-up pulses, which simplifies the radiofrequency pulse design problem significantly. Out-of-slice magnetization pathways are suppressed using radiofrequency-spoiling. Brain images obtained with this technique show excellent gray/white matter contrast, and point to the possibility of rapid steady-state T(2)/T(1) -weighted imaging with intrinsic suppression of cerebrospinal fluid, through-plane vessel signal, and off-resonance artifacts. In the future, we expect STFR imaging to benefit significantly from parallel excitation hardware and high-order gradient shim systems.

摘要

小 tip 快速恢复(STFR)成像是一种新的稳态成像序列,是平衡稳态自由进动的潜在替代方法。在理想的成像条件下,STFR 可能提供与平衡稳态自由进动相当的信噪比和图像对比度,但没有由于共振偏移引起的信号变化。STFR 依赖于精心设计的“tip-up”或“快速恢复”射频脉冲,以便在每个数据读出段后将自旋与纵轴对齐。tip-up 脉冲的设计基于采集单独的失谐(B0)图。不幸的是,设计快速(几毫秒)的切片或板状选择性射频脉冲,以准确地将激励模式调整为整个成像体积内局部 B0 不均匀性,仍然是一个具有挑战性且未解决的问题。我们介绍了一种基于“非切片选择性”tip-up 脉冲的 STFR 成像的新实现,这大大简化了射频脉冲设计问题。使用射频扰断抑制切片外磁化路径。使用该技术获得的脑图像显示出出色的灰/白质对比度,并指出通过内在抑制脑脊液、贯穿平面血管信号和失谐伪影实现快速稳态 T(2)/T(1)加权成像的可能性。将来,我们预计 STFR 成像将从并行激发硬件和高阶梯度整形系统中受益匪浅。