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稳健自校准 nCPMG 采集:在体部扩散加权成像中的应用。

Robust Self-Calibrating nCPMG Acquisition: Application to Body Diffusion-Weighted Imaging.

出版信息

IEEE Trans Med Imaging. 2018 Jan;37(1):200-209. doi: 10.1109/TMI.2017.2741421. Epub 2017 Aug 17.

Abstract

This paper demonstrates a robust diffusion-weighted single-shot fast spin echo (SS-FSE) sequence in the presence of significant off-resonance, which includes a variable-density acquisition and a self-calibrated reconstruction as improvements. A non-Carr-Purcell-Meiboom-Gill (nCPMG) SS-FSE acquisition stabilizes both the main and parasitic echo families for each echo. This preserves both the in-phase and quadrature components of the magnetization throughout the echo train. However, nCPMG SS-FSE also promotes aliasing of the quadrature component, which complicates reconstruction. A new acquisition and reconstruction approach is presented here, where the field-of-view is effectively doubled, but a partial k-space and variable density sampling is used to improve scan efficiency. The technique is presented in phantom scans to validate SNR and robustness against rapidly varying object phase. In vivo healthy volunteer examples and the clinical cases are demonstrated in abdominal imaging. This new approach provides comparable SNR to previous nCPMG acquisition techniques as well as providing more uniform apparent diffusion coefficient maps in phantom scans. In vivo scans suggest that this method is more robust against motion than previous approaches. The proposed reconstruction is an improvement to the nCPMG sequence as it is auto-calibrating and is justified to accurately treat the signal model for the nCPMG SS-FSE sequence.

摘要

本文展示了一种在存在明显离频情况下稳健的扩散加权单次激发快速自旋回波(SS-FSE)序列,该序列包括可变密度采集和自校准重建作为改进。非 Carr-Purcell-Meiboom-Gill(nCPMG)SS-FSE 采集稳定了每个回波的主回波族和寄生回波族。这在整个回波链中保留了磁化的同相和正交分量。然而,nCPMG SS-FSE 也促进了正交分量的混叠,这使得重建变得复杂。这里提出了一种新的采集和重建方法,其中视场有效加倍,但使用部分 k 空间和可变密度采样来提高扫描效率。该技术在体模扫描中得到了验证,以验证 SNR 和对快速变化的物体相位的鲁棒性。腹部成像中的健康志愿者示例和临床病例也得到了展示。这种新方法提供了与以前的 nCPMG 采集技术相当的 SNR,并在体模扫描中提供了更均匀的表观扩散系数图。体内扫描表明,与以前的方法相比,该方法对运动的鲁棒性更强。所提出的重建是对 nCPMG 序列的改进,因为它是自校准的,并可以准确地对待 nCPMG SS-FSE 序列的信号模型。

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本文引用的文献

1
Slice profile effects on nCPMG SS-FSE.切片轮廓效应对 nCPMG SS-FSE 的影响。
Magn Reson Med. 2018 Jan;79(1):430-438. doi: 10.1002/mrm.26694. Epub 2017 Mar 31.
2
Body Diffusion Weighted Imaging Using Non-CPMG Fast Spin Echo.使用非CPMG快速自旋回波的体部扩散加权成像
IEEE Trans Med Imaging. 2017 Feb;36(2):549-559. doi: 10.1109/TMI.2016.2622238. Epub 2016 Oct 27.
7
Realignment capability of the nCPMG sequence.nCPMG 序列的重-align 能力。
J Magn Reson. 2011 Aug;211(2):121-33. doi: 10.1016/j.jmr.2011.05.005. Epub 2011 May 15.
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Parallel imaging artifacts in body magnetic resonance imaging.体部磁共振成像中的并行成像伪影
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