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用于T1加权快速梯度回波MRI中使总信号最大化的翻转角变化的闭式表达式。

Closed-form expressions for flip angle variation that maximize total signal in T1-weighted rapid gradient echo MRI.

作者信息

Drobnitzky Matthias, Klose Uwe

机构信息

Magnetic Resonance, Siemens Healthcare GmbH, Erlangen, 91052, Germany.

Department of Diagnostic and Interventional Neuroradiology, University Hospital Tübingen, Tübingen, 72076, Germany.

出版信息

Med Phys. 2017 Mar;44(3):873-885. doi: 10.1002/mp.12095.

Abstract

PURPOSE

Magnetization-prepared rapid gradient-echo (MPRAGE) sequences are commonly employed for T1-weighted structural brain imaging. Following a contrast preparation radiofrequency (RF) pulse, the data acquisition proceeds under nonequilibrium conditions of the relaxing longitudinal magnetization. Variation of the flip angle can be used to maximize total available signal. Simulated annealing or greedy algorithms have so far been published to numerically solve this problem, with signal-to-noise ratios optimized for clinical imaging scenarios by adhering to a predefined shape of the signal evolution. We propose an unconstrained optimization of the MPRAGE experiment that employs techniques from resource allocation theory. A new dynamic programming solution is introduced that yields closed-form expressions for optimal flip angle variation.

METHODS

Flip angle series are proposed that maximize total transverse magnetization (Mxy) for a range of physiologic T1 values. A 3D MPRAGE sequence is modified to allow for a controlled variation of the excitation angle. Experiments employing a T1 contrast phantom are performed at 3T. 1D acquisitions without phase encoding permit measurement of the temporal development of Mxy. Image mean signal and standard deviation for reference flip angle trains are compared in 2D measurements. Signal profiles at sharp phantom edges are acquired to access image blurring related to nonuniform Mxy development.

RESULTS

A novel closed-form expression for flip angle variation is found that constitutes the optimal policy to reach maximum total signal. It numerically equals previously published results of other authors when evaluated under their simplifying assumptions. Longitudinal magnetization (Mz) is exhaustively used without causing abrupt changes in the measured MR signal, which is a prerequisite for artifact free images. Phantom experiments at 3T verify the expected benefit for total accumulated k-space signal when compared with published flip angle series.

CONCLUSIONS

Describing the MR signal collection in MPRAGE sequences as a Bellman problem is a new concept. By means of recursively solving a series of overlapping subproblems, this leads to an elegant solution for the problem of maximizing total available MR signal in k-space. A closed-form expression for flip angle variation avoids the complexity of numerical optimization and eases access to controlled variation in an attempt to identify potential clinical applications.

摘要

目的

磁化准备快速梯度回波(MPRAGE)序列常用于T1加权脑结构成像。在施加对比准备射频(RF)脉冲后,数据采集在纵向磁化弛豫的非平衡条件下进行。翻转角的变化可用于最大化总可用信号。迄今为止,已发表了模拟退火或贪婪算法来数值求解此问题,通过遵循预定义的信号演变形状来优化临床成像场景的信噪比。我们提出了一种对MPRAGE实验的无约束优化方法,该方法采用了资源分配理论中的技术。引入了一种新的动态规划解决方案,该方案可得出最优翻转角变化的闭式表达式。

方法

提出了一系列翻转角,可在一系列生理T1值范围内最大化总横向磁化强度(Mxy)。对3D MPRAGE序列进行修改,以允许对激发角进行可控变化。在3T条件下使用T1对比体模进行实验。无相位编码的一维采集允许测量Mxy的时间演变。在二维测量中比较参考翻转角序列的图像平均信号和标准差。采集体模尖锐边缘处的信号轮廓,以评估与Mxy不均匀发展相关的图像模糊情况。

结果

发现了一种新颖的翻转角变化闭式表达式,它构成了达到最大总信号的最优策略。在其他作者的简化假设下进行评估时,其数值结果与他们先前发表的结果相等。纵向磁化强度(Mz)被充分利用,且不会导致测量的MR信号出现突然变化,这是获得无伪影图像的前提条件。与已发表的翻转角序列相比,3T条件下的体模实验验证了总累积k空间信号的预期益处。

结论

将MPRAGE序列中的MR信号采集描述为一个贝尔曼问题是一个新概念。通过递归求解一系列重叠子问题,这为在k空间中最大化总可用MR信号的问题提供了一个简洁的解决方案。翻转角变化的闭式表达式避免了数值优化的复杂性,并便于进行可控变化,以尝试确定潜在的临床应用。

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