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Advanced Three-Dimensional Tailored RF Pulse Design in Volume Selective Parallel Excitation

机译:体积选择性并联激励中的高级三维量身定制射频脉冲设计

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摘要

Volume selective excitation has a variety of uses in clinical magnetic resonance imaging, but can suffer from insufficient excitation accuracy and impractically long pulse duration in ultra-high field applications. Based on recently-developed parallel transmission techniques, an optimized 3D tailored radio-frequency RF (TRF) pulse, designed with a novel 3D adaptive trajectory, is proposed to improve and accelerate volume selective excitation. The trajectory is designed to be regular-shaped and adaptively stretched according to the size of a 3D k-space “trajectory container.” The container is designed to hold most of the RF energy deposition responsible for the desired pattern in the excitation k-space in the use of the blurring patterns caused by the multichannel sensitivity maps. The proposed method can also be used to reduce both global and peak RF energy required during excitation. The feasibility of this method is confirmed by simulations of ultra-high field cases.
机译:体选择性激发在临床磁共振成像中具有多种用途,但是在超高场应用中会受到激发精度不足和脉冲持续时间不切实际的困扰。基于最新开发的并行传输技术,提出了一种以新颖的3D自适应轨迹设计的优化3D定制射频RF(TRF)脉冲,以改善和加速体积选择性激发。轨迹被设计为规则形状,并根据3D k空间“轨迹容器”的大小进行自适应拉伸。该容器设计为在使用由多通道灵敏度图引起的模糊模式时,将大部分RF能量沉积保持在激发k空间中的所需模式上。所提出的方法还可以用于减少激励期间所需的全局和峰值RF能量。通过模拟超高场情况证实了该方法的可行性。

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