Weinmüller Simon, Endres Jonathan, Dang Nam, Stollberger Rudolf, Zaiss Moritz
Institute of Neuroradiology, Uniklinikum Erlangen, Friedrich-Alexander-Universität Erlangen-Nürnberg (FAU), Erlangen, Germany.
Institute of Biomedical Imaging, Graz University of Technology, Graz, Austria.
Magn Reson Med. 2025 Mar;93(3):942-960. doi: 10.1002/mrm.30318. Epub 2024 Nov 17.
The complex signal decay during the transient FLASH MRI readout can lead to artifacts in magnitude and phase images. We show that target-driven optimization of individual RF flip angles and phases can realize near-ideal signal behavior and mitigate artifacts.
The differentiable end-to-end optimization framework MR-zero is used to optimize RF trains of the FLASH sequence. We focus herein on minimizing deviations from the ideally spoiled signal by using a mono-exponential Look-Locker target. We first obtain the transient FLASH signal decay substructure, and then minimize the deviation to the Look-Locker decay by optimizing the individual (i) flip angles, (ii) RF phases, and (iii) flip angles and RF phases. Comparison between measurement and simulation is performed using Pulseq in 1D and 2D.
We were able to reproduce the complex substructure of the transient FLASH signal decay. All three optimization objectives can bring the real FLASH signal closer to the ideal case, with best results when both flip angles and RF phases are adjusted jointly. This solution outperformed all tested conventional quadratic RF cyclings in terms of (i) matching the Look-Locker target signal, (ii) phase stability, (iii) point spread functions ideality, (iv) robustness against parameter changes, and (v) magnitude and phase image quality. Other target functions for the signal could as well be realized, yet their response is not as general as for the Look-Locker target and needs to be optimized for a specific context.
Individual flip angle and RF phase optimization improves the transient signal decay of FLASH MRI sequences.
快速低角度激发(FLASH)磁共振成像(MRI)读出过程中的复杂信号衰减会导致幅度和相位图像出现伪影。我们表明,对各个射频翻转角和相位进行目标驱动优化可实现接近理想的信号行为并减轻伪影。
使用可微的端到端优化框架MR-zero来优化FLASH序列的射频脉冲串。我们在此专注于通过使用单指数Look-Locker目标来最小化与理想破坏信号的偏差。我们首先获得瞬态FLASH信号衰减子结构,然后通过优化单个(i)翻转角、(ii)射频相位以及(iii)翻转角和射频相位来最小化与Look-Locker衰减的偏差。使用Pulseq在一维和二维中进行测量与模拟之间的比较。
我们能够重现瞬态FLASH信号衰减的复杂子结构。所有三个优化目标都可使实际的FLASH信号更接近理想情况,当同时调整翻转角和射频相位时效果最佳。在(i)匹配Look-Locker目标信号、(ii)相位稳定性、(iii)点扩散函数理想性、(iv)对参数变化的鲁棒性以及(v)幅度和相位图像质量方面,该解决方案优于所有测试的传统二次射频循环。信号的其他目标函数也可以实现,但其响应不如Look-Locker目标那样通用,需要针对特定情况进行优化。
单个翻转角和射频相位优化可改善FLASH MRI序列的瞬态信号衰减。