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伽马之星:一个用于开发动态、具备实时能力的磁共振序列的框架。

gammaSTAR: A framework for the development of dynamic, real-time capable MR sequences.

作者信息

Konstandin Simon, Günther Matthias, Hoinkiss Daniel C

机构信息

Imaging Physics, Fraunhofer Institute for Digital Medicine MEVIS, Bremen, Germany.

Physics/Electrical Engineering, University of Bremen, Bremen, Germany.

出版信息

Magn Reson Med. 2025 Oct;94(4):1485-1499. doi: 10.1002/mrm.30573. Epub 2025 May 20.

Abstract

PURPOSE

To present the real-time capability and advanced MR sequence library of the MR sequence development framework gammaSTAR.

METHODS

The presented platform consists of four different components: (1) a frontend for sequence development combined with a Python backend for sequence generation; (2) a Lua backend for the creation of hardware instructions; (3) a vendor-specific driver for translation of these instructions into scanner-specific objects; and (4) an interface for real-time feedback capability. In vivo measurements of the same volunteer were performed for comparison of imaging and spectroscopy sequences implemented in this framework with those of one main vendor (Siemens Healthineers) at magnetic field strengths of 3 T and 1.5 T. Prospective motion correction was integrated into a spin echo EPI sequence to demonstrate the real-time feedback capability.

RESULTS

The imaging and spectroscopy results of the gammaSTAR sequences show very similar image contrasts and qualities compared to those by the vendor. ADC maps were calculated and show values of (0.80 ± 0.14)10 mm/s in white matter. Results of pseudo-continuous arterial spin labeling gradient and spin-echo (pCASL GRASE) and 3D radial UTE imaging demonstrate the ability to run complex sequences without long sequence preparation times. Prospective motion correction is possible by means of real-time feedback and shows much fewer movement artifacts with mean voxel displacement of 1.63 mm (uncorrected) versus 0.37 mm (corrected). All images were reconstructed using the vendor's reconstruction pipeline.

CONCLUSION

The platform gammaSTAR allows for MR sequence development with real-time feedback capability demonstrated by a large number of MR sequences and applications.

摘要

目的

展示磁共振序列开发框架gammaSTAR的实时功能和先进的磁共振序列库。

方法

所展示的平台由四个不同组件组成:(1)用于序列开发的前端,结合用于序列生成的Python后端;(2)用于创建硬件指令的Lua后端;(3)用于将这些指令转换为特定扫描仪对象的特定供应商驱动程序;(4)用于实时反馈功能的接口。在3 T和1.5 T磁场强度下,对同一志愿者进行了体内测量,以比较该框架中实现的成像和光谱序列与一个主要供应商(西门子医疗)的序列。前瞻性运动校正被集成到自旋回波EPI序列中,以展示实时反馈功能。

结果

与供应商的序列相比,gammaSTAR序列的成像和光谱结果显示出非常相似的图像对比度和质量。计算了表观扩散系数(ADC)图,白质中的值为(0.80±0.14)×10⁻³ mm²/s。伪连续动脉自旋标记梯度和自旋回波(pCASL GRASE)以及3D径向UTE成像的结果表明,能够运行复杂序列而无需长时间的序列准备时间。通过实时反馈可以进行前瞻性运动校正,与未校正时平均体素位移1.63 mm相比,校正后运动伪影明显减少,平均体素位移为0.37 mm。所有图像均使用供应商的重建管道进行重建。

结论

平台gammaSTAR允许进行具有实时反馈功能的磁共振序列开发,大量的磁共振序列和应用证明了这一点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d17b/12309873/7eb1f33b42ea/MRM-94-1485-g002.jpg

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