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Accelerated whole-brain perfusion imaging using a simultaneous multislice spin-echo and gradient-echo sequence with joint virtual coil reconstruction.使用同时多层面自旋回波和梯度回波序列以及联合虚拟线圈重建进行加速全脑灌注成像。
Magn Reson Med. 2019 Sep;82(3):973-983. doi: 10.1002/mrm.27784. Epub 2019 May 8.
3
Phase-matched virtual coil reconstruction for highly accelerated diffusion echo-planar imaging.相匹配的虚拟线圈重建用于高度加速的扩散回波平面成像。
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4
Motion-robust reconstruction of multishot diffusion-weighted images without phase estimation through locally low-rank regularization.通过局部低秩正则化实现多shot 扩散加权图像的运动鲁棒重建,无需相位估计。
Magn Reson Med. 2019 Feb;81(2):1181-1190. doi: 10.1002/mrm.27488. Epub 2018 Oct 22.
5
Motion-robust sub-millimeter isotropic diffusion imaging through motion corrected generalized slice dithered enhanced resolution (MC-gSlider) acquisition.通过运动校正广义切片抖动增强分辨率(MC-gSlider)采集实现运动稳健的亚毫米各向同性扩散成像。
Magn Reson Med. 2018 Nov;80(5):1891-1906. doi: 10.1002/mrm.27196. Epub 2018 Apr 1.
6
Improving parallel imaging by jointly reconstructing multi-contrast data.通过联合重建多对比度数据来提高并行成像。
Magn Reson Med. 2018 Aug;80(2):619-632. doi: 10.1002/mrm.27076. Epub 2018 Jan 10.
7
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Magn Reson Med. 2018 May;79(5):2702-2712. doi: 10.1002/mrm.26944. Epub 2017 Sep 23.
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3D-MB-MUSE: A robust 3D multi-slab, multi-band and multi-shot reconstruction approach for ultrahigh resolution diffusion MRI.3D-MB-MUSE:一种用于超高分辨率扩散 MRI 的稳健的三维多切片、多带宽和多激发重建方法。
Neuroimage. 2017 Oct 1;159:46-56. doi: 10.1016/j.neuroimage.2017.07.035. Epub 2017 Jul 18.
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In vivo B field shimming methods for MRI at 7T.7T MRI 的活体 B 场匀场方法。
Neuroimage. 2018 Mar;168:71-87. doi: 10.1016/j.neuroimage.2017.06.013. Epub 2017 Jun 7.
10
High-resolution in vivo diffusion imaging of the human brain with generalized slice dithered enhanced resolution: Simultaneous multislice (gSlider-SMS).高分辨率活体人脑弥散成像的广义切片抖动增强分辨率:同时多层(gSlider-SMS)。
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采用 gSlider 采集并结合 和 T 校正以及集成的 ΔB /Rx 匀场阵列实现高保真、各向同性分辨率弥散成像。

High-fidelity, high-isotropic-resolution diffusion imaging through gSlider acquisition with and T corrections and integrated ΔB /Rx shim array.

机构信息

Athinoula A. Martinos Center for Biomedical Imaging, Massachusetts General Hospital, Charlestown, Massachusetts.

Department of Radiology, Harvard Medical School, Boston, Massachusetts.

出版信息

Magn Reson Med. 2020 Jan;83(1):56-67. doi: 10.1002/mrm.27899. Epub 2019 Aug 1.

DOI:10.1002/mrm.27899
PMID:31373048
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6778699/
Abstract

PURPOSE

and T corrections and dynamic multicoil shimming approaches were proposed to improve the fidelity of high-isotropic-resolution generalized slice-dithered enhanced resolution (gSlider) diffusion imaging.

METHODS

An extended reconstruction incorporating inhomogeneity and T recovery information was developed to mitigate slab-boundary artifacts in short-repetition time (TR) gSlider acquisitions. Slab-by-slab dynamic B shimming using a multicoil integrated ΔB /Rx shim array and high in-plane acceleration (R = 4) achieved with virtual-coil GRAPPA were also incorporated into a 1-mm isotropic resolution gSlider acquisition/reconstruction framework to achieve a significant reduction in geometric distortion compared to single-shot echo planar imaging (EPI).

RESULTS

The slab-boundary artifacts were alleviated by the proposed and T corrections compared to the standard gSlider reconstruction pipeline for short-TR acquisitions. Dynamic shimming provided >50% reduction in geometric distortion compared to conventional global second-order shimming. One-millimeter isotropic resolution diffusion data show that the typically problematic temporal and frontal lobes of the brain can be imaged with high geometric fidelity using dynamic shimming.

CONCLUSIONS

The proposed and T corrections and local-field control substantially improved the fidelity of high-isotropic-resolution diffusion imaging, with reduced slab-boundary artifacts and geometric distortion compared to conventional gSlider acquisition and reconstruction. This enabled high-fidelity whole-brain 1-mm isotropic diffusion imaging with 64 diffusion directions in 20 min using a 3T clinical scanner.

摘要

目的

提出了 和 T 校正以及动态多线圈调谐方法,以提高各向同性分辨率广义切片抖动增强分辨率(gSlider)扩散成像的保真度。

方法

开发了一种扩展重建,包含不均匀性和 T 恢复信息,以减轻短重复时间(TR)gSlider 采集时的板边界伪影。使用多线圈集成的 ΔB / Rx 调谐阵列和高平面内加速(R = 4)的逐板动态 B 调谐,以及虚拟线圈 GRAPPA 也被整合到 1 毫米各向同性分辨率 gSlider 采集/重建框架中,与单次激发回波平面成像(EPI)相比,实现了显著的几何变形减少。

结果

与短 TR 采集的标准 gSlider 重建流水线相比,提出的 和 T 校正减轻了板边界伪影。与传统的全局二阶调谐相比,动态调谐提供了 >50%的几何变形减少。1 毫米各向同性分辨率的扩散数据表明,使用动态调谐可以以高的几何保真度对大脑的通常存在问题的颞叶和额叶进行成像。

结论

提出的 和 T 校正和局部场控制大大提高了各向同性分辨率扩散成像的保真度,与传统的 gSlider 采集和重建相比,减少了板边界伪影和几何变形。这使得使用 3T 临床扫描仪在 20 分钟内可以进行具有 64 个扩散方向的全脑 1 毫米各向同性扩散成像。

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