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本文引用的文献

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Three-dimensional MR-encephalography: fast volumetric brain imaging using rosette trajectories.三维磁共振脑成像:使用梅花轨迹快速容积脑成像。
Magn Reson Med. 2011 May;65(5):1260-8. doi: 10.1002/mrm.22711. Epub 2011 Feb 3.
3
Functional magnetic resonance inverse imaging of human visuomotor systems using eigenspace linearly constrained minimum amplitude (eLCMA) beamformer.利用特征空间线性约束最小幅度(eLCMA)波束形成器对人视觉运动系统进行功能磁共振逆成像。
Neuroimage. 2011 Mar 1;55(1):87-100. doi: 10.1016/j.neuroimage.2010.11.072. Epub 2010 Dec 4.
4
Effect of hemodynamic variability on Granger causality analysis of fMRI.血流动力学变异性对 fMRI 格兰杰因果分析的影响。
Neuroimage. 2010 Sep;52(3):884-96. doi: 10.1016/j.neuroimage.2009.11.060. Epub 2009 Dec 11.
5
K-space reconstruction of magnetic resonance inverse imaging (K-InI) of human visuomotor systems.磁共振逆向成像(K-InI)的 K 空间重建。
Neuroimage. 2010 Feb 15;49(4):3086-98. doi: 10.1016/j.neuroimage.2009.11.016. Epub 2009 Nov 13.
6
96-Channel receive-only head coil for 3 Tesla: design optimization and evaluation.用于3特斯拉的96通道仅接收式头部线圈:设计优化与评估
Magn Reson Med. 2009 Sep;62(3):754-62. doi: 10.1002/mrm.22028.
7
Fast functional brain imaging using constrained reconstruction based on regularization using arbitrary projections.基于任意投影正则化的约束重建快速功能性脑成像。
Magn Reson Med. 2009 Aug;62(2):394-405. doi: 10.1002/mrm.22009.
8
A comparison of Granger causality and coherency in fMRI-based analysis of the motor system.基于功能磁共振成像的运动系统分析中 Granger 因果关系与相干性的比较。
Hum Brain Mapp. 2009 Nov;30(11):3475-94. doi: 10.1002/hbm.20771.
9
Linear constraint minimum variance beamformer functional magnetic resonance inverse imaging.线性约束最小方差波束形成器功能磁共振逆成像
Neuroimage. 2008 Nov 1;43(2):297-311. doi: 10.1016/j.neuroimage.2008.06.038. Epub 2008 Jul 11.
10
Event-related single-shot volumetric functional magnetic resonance inverse imaging of visual processing.视觉处理的事件相关单次容积功能磁共振逆成像
Neuroimage. 2008 Aug 1;42(1):230-47. doi: 10.1016/j.neuroimage.2008.04.179. Epub 2008 Apr 23.

多视角磁共振逆向成像于人视觉运动系统。

Multi-projection magnetic resonance inverse imaging of the human visuomotor system.

机构信息

Institute of Biomedical Engineering, National Taiwan University, Taipei, Taiwan.

出版信息

Neuroimage. 2012 May 15;61(1):304-13. doi: 10.1016/j.neuroimage.2012.01.115. Epub 2012 Feb 4.

DOI:10.1016/j.neuroimage.2012.01.115
PMID:22326985
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3342431/
Abstract

Using highly parallel radiofrequency (RF) detection, magnetic resonance inverse imaging (InI) can achieve 100 ms temporal resolution with whole brain coverage. This is achieved by trading off partition encoding steps and thus spatial resolution for a higher acquisition rate. The reduced spatial information is estimated by solving under-determined inverse problems using RF coil sensitivity information. Here we propose multi projection inverse imaging (mInI) to combine different projection images to improve the spatial resolution of InI. Specifically, coronal, sagittal, and transverse projection images were acquired from different runs of the fMRI acquisitions using a 32-channel head coil array. Simulations show that mInI improves the quality of the instantaneous image reconstruction significantly. Going from one projection to three projections, the spatial resolution quantified by the full width at half maximum of the point-spread function (PSF) is improved from 2.6 pixels to 1.4 pixels (4 mm nominal resolution per pixel). Considering the shape of the PSF, the effective spatial resolution is improved from 16.9 pixels to 4.7 pixels. In vivo fMRI experiments using a two-choice reaction time tasks show visual and sensorimotor cortical activities spatially consistent with typical EPI data, yet mInI offers 100 ms temporal resolution with the whole brain coverage. The mInI data with three projections revealed that the sensorimotor cortex was activated 700 ms after the visual cortex. mInI can be applied to BOLD-contrast fMRI experiments to characterize the dynamics of the activated brain areas with a high spatiotemporal resolution.

摘要

利用高度并行的射频(RF)检测,磁共振逆成像(InI)可以实现 100ms 的时间分辨率和全脑覆盖。这是通过牺牲分区编码步骤来实现的,从而提高了采集率,牺牲了空间分辨率。通过利用射频线圈灵敏度信息来解决欠定逆问题,来估计减少的空间信息。在这里,我们提出了多投影逆成像(mInI),以结合不同的投影图像来提高 InI 的空间分辨率。具体来说,使用 32 通道头部线圈阵列从 fMRI 采集的不同运行中获取冠状、矢状和横断投影图像。模拟表明,mInI 显著提高了瞬时图像重建的质量。从一个投影到三个投影,通过点扩散函数(PSF)的半最大值全宽来量化的空间分辨率从 2.6 像素提高到 1.4 像素(每像素 4mm 名义分辨率)。考虑到 PSF 的形状,有效空间分辨率从 16.9 像素提高到 4.7 像素。使用二选一反应时间任务的活体 fMRI 实验表明,视觉和感觉运动皮层的活动与典型的 EPI 数据在空间上一致,但 mInI 具有全脑覆盖和 100ms 的时间分辨率。使用三个投影的 mInI 数据表明,感觉运动皮层在视觉皮层后 700ms 被激活。mInI 可应用于 BOLD 对比 fMRI 实验,以高时空分辨率描述激活脑区的动力学。