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基于子空间重建的优化多轴螺旋投影磁共振指纹识别技术用于快速全脑高各向同性分辨率定量成像

Optimized multi-axis spiral projection MR fingerprinting with subspace reconstruction for rapid whole-brain high-isotropic-resolution quantitative imaging.

作者信息

Cao Xiaozhi, Liao Congyu, Iyer Siddharth Srinivasan, Wang Zhixing, Zhou Zihan, Dai Erpeng, Liberman Gilad, Dong Zijing, Gong Ting, He Hongjian, Zhong Jianhui, Bilgic Berkin, Setsompop Kawin

机构信息

Department of Radiology, Stanford University, Stanford, California, USA.

Department of Electrical Engineering, Stanford University, Stanford, California, USA.

出版信息

Magn Reson Med. 2022 Jul;88(1):133-150. doi: 10.1002/mrm.29194. Epub 2022 Feb 24.

Abstract

PURPOSE

To improve image quality and accelerate the acquisition of 3D MR fingerprinting (MRF).

METHODS

Building on the multi-axis spiral-projection MRF technique, a subspace reconstruction with locally low-rank constraint and a modified spiral-projection spatiotemporal encoding scheme called tiny golden-angle shuffling were implemented for rapid whole-brain high-resolution quantitative mapping. Reconstruction parameters such as the locally low-rank regularization parameter and the subspace rank were tuned using retrospective in vivo data and simulated examinations. B inhomogeneity correction using multifrequency interpolation was incorporated into the subspace reconstruction to further improve the image quality by mitigating blurring caused by off-resonance effect.

RESULTS

The proposed MRF acquisition and reconstruction framework yields high-quality 1-mm isotropic whole-brain quantitative maps in 2 min at better quality compared with 6-min acquisitions of prior approaches. The proposed method was validated to not induce bias in T and T mapping. High-quality whole-brain MRF data were also obtained at 0.66-mm isotropic resolution in 4 min using the proposed technique, where the increased resolution was shown to improve visualization of subtle brain structures.

CONCLUSIONS

The proposed tiny golden-angle shuffling, MRF with optimized spiral-projection trajectory and subspace reconstruction enables high-resolution quantitative mapping in ultrafast acquisition time.

摘要

目的

提高图像质量并加速三维磁共振指纹成像(MRF)的采集。

方法

基于多轴螺旋投影MRF技术,实施具有局部低秩约束的子空间重建以及一种名为微小黄金角混洗的改进螺旋投影时空编码方案,以实现快速全脑高分辨率定量映射。使用回顾性体内数据和模拟检查来调整诸如局部低秩正则化参数和子空间秩等重建参数。将使用多频插值的B不均匀性校正纳入子空间重建,以通过减轻失谐效应引起的模糊来进一步提高图像质量。

结果

所提出的MRF采集和重建框架在2分钟内生成高质量的1毫米各向同性全脑定量图谱,与先前方法6分钟的采集相比质量更好。所提出的方法经验证在T1和T2映射中不会产生偏差。使用所提出的技术,还在4分钟内以0.66毫米各向同性分辨率获得了高质量的全脑MRF数据,其中分辨率的提高显示出改善了细微脑结构的可视化。

结论

所提出的微小黄金角混洗、具有优化螺旋投影轨迹的MRF和子空间重建能够在超快速采集时间内实现高分辨率定量映射。

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