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首页> 外文期刊>Magnetic resonance in medicine: official journal of the Society of Magnetic Resonance in Medicine >In vivo demonstration of whole‐brain multislice multispoke parallel transmit radiofrequency pulse design in the small and large flip angle regimes at 7 Tesla
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In vivo demonstration of whole‐brain multislice multispoke parallel transmit radiofrequency pulse design in the small and large flip angle regimes at 7 Tesla

机译:在全脑多光线的体内示范中,在7特斯拉的小而大的翻转角度方面的辐射探测射频设计

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摘要

Purpose A multispoke specific absorption rate (SAR) ‐aware pulse design approach for homogeneous multiple‐slice small and large flip angle (FA) excitations with parallel transmission is proposed. The approach aims at optimizing in a slice‐specific manner the spokes locations and radiofrequency pulses. Methods The problem is posed as a set of slice‐specific magnitude‐least‐squares problems, linked together by hardware and SAR constraints, and solved jointly using an active‐set algorithm. Average Hamiltonian theory is exploited in the large FA case to greatly reduce the computational burden. The approach is validated numerically by means of simulations and experimentally on two volunteers at 7 Tesla through application of a high‐resolution T 2 * ‐weighted brain imaging protocol. Results The optimization of up to 1300 variables under 745 explicit constraints could be performed in less than 1 and 4?min for the small and large FA cases, respectively. The joint design proves valuable for SAR demanding protocols. Compared with the conventional circularly polarized mode, the designed pulses increased the signal by more than 40% in 70% of the voxels. Conclusion The B 1 + inhomogeneity problem was mitigated efficiently in a multislice near whole‐brain coverage protocol in the small and large FA regimes using a rapid slice‐specific pulse design algorithm where the pulses were optimized jointly. Magn Reson Med 78:1009–1019, 2017. ? 2016 International Society for Magnetic Resonance in Medicine.
机译:目的,提出了一种具有并联传输的均匀多层小型和大的翻转角度(FA)激发的多立面特异性吸收率(SAR)--AWARE脉冲设计方法。该方法旨在以切片的方式优化辐条位置和射频脉冲。方法问题是通过硬件和SAR约束链接在一起的一组切片特定幅度最小二乘问题,并使用主动集算法联合解决。平均汉密尔顿理论在大型FA案例中被利用,从而大大减少计算负担。该方法通过模拟方式验证,通过应用高分辨率T 2 * - 重量成像协议,通过模拟和7个特斯拉在两种志愿者上进行验证。结果在745个明确约束下最多可变的优化可以在小于1和4?分别用于小型和大型FA案例。联合设计证明了SAR苛刻的协议有价值。与传统的圆极化模式相比,设计的脉冲在70%的体素中增加了40%以上的信号。结论使用快速的切片特异性脉冲设计算法,在小型和大的FA制度附近的全脑覆盖协议附近的多层内层中有效地减轻了B 1 +不均匀性问题。 Magn Reson Med 78:1009-1019,2017。 2016年医学中的磁共振学会。

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