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Local specific absorption rate (SAR), global SAR, transmitter power, and excitation accuracy trade-offs in low flip-angle parallel transmit pulse design

机译:低翻转并行发射脉冲设计中的局部特定吸收率(saR),全局saR,发射机功率和激励精度权衡

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摘要

PurposeWe propose a constrained optimization approach for designing parallel transmit (pTx) pulses satisfying all regulatory and hardware limits. We study the trade-offs between excitation accuracy, local and global specific absorption rate (SAR), and maximum and average power for small flip-angle pTx (eight channels) spokes pulses in the torso at 3 T and in the head at 7 T.MethodsWe compare the trade-offs between the above-mentioned quantities using the L-curve method. We use a primal-dual algorithm and a compressed set of local SAR matrices to design radio-frequency (RF) pulses satisfying all regulatory (including local SAR) and hardware constraints.ResultsLocal SAR can be substantially reduced (factor of 2 or more) by explicitly constraining it in the pulse design process compared to constraining global SAR or pulse power alone. This often comes at the price of increased pulse power.ConclusionSimultaneous control of power and SAR is needed for the design of pTx pulses that are safe and can be played on the scanner. Constraining a single quantity can create large increase in the others, which can then rise above safety or hardware limits. Simultaneous constraint of local SAR and power is fast enough to be applicable in a clinical setting.
机译:目的我们提出了一种约束优化方法,用于设计满足所有法规和硬件限制的并行发送(pTx)脉冲。我们研究了在3 T时躯干和7 T时头部的小翻转角pTx(八个通道)辐条脉冲的激励精度,局部和全局比吸收率(SAR)以及最大和平均功率之间的权衡方法我们使用L曲线方法比较上述数量之间的权衡。我们使用原始对偶算法和一组局部SAR矩阵压缩来设计满足所有法规要求(包括局部SAR)和硬件约束的射频(RF)脉冲,结果可以通过以下方法大幅减少局部SAR(系数为2或更大):与仅限制全局SAR或脉冲功率相比,在脉冲设计过程中显式限制它。这通常是以增加脉冲功率为代价的。结论对于设计安全且可以在扫描仪上播放的pTx脉冲,需要同时控制功率和SAR。限制单个数量会导致其他数量的大量增加,然后超过安全或硬件限制。本地SAR和功率的同时约束足够快,可以应用于临床。

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