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Single-scan R 2 * measurement with macroscopic field inhomogeneity correction

机译:宏观视野不均匀校正的单次扫描R 2 *测量

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摘要

Accurate quantification of R 2 * (=1/T 2 *) is important for many applications in neuroimaging. However, R 2 * measurements made using conventional multi-echo gradient echo imaging are hampered by macroscopic field inhomogeneities. Several methods for compensation of macroscopic field inhomogeneities have been introduced, most of them requiring increased scan time. In this paper, an R 2 * estimation process using a modified multi-echo gradient echo sequence that includes bipolar compensation gradients and does not require additional data acquisition time is proposed. A post-processing algorithm based on an excitation-profile weighted signal model is used. The optimal amount of compensation gradients and performance was investigated by numerical simulation and phantom tests. Multi-slice R 2 * maps were obtained from 11 human volunteers at 3T. Simulation results demonstrated that this method successfully removes the effects of macroscopic field inhomogeneities of up to ±300μT/m within an error range of ±8%. ROI analysis revealed R 2 * values of 30.4±3.0s -1 (substantia nigra), 25.8±2.7s -1 (red nuclei), 23.2±1.0s -1 (genu), 20.8±1.2s -1 (putamen), 34.2±3.4s -1 (globus pallidus), and 21.8±1.4s -1 (splenium) using the proposed method, with statistically significant differences compared to conventional method in the regions of the substantia nigra, red nucleus, genu, putamen, and globus pallidus (p0.05). Our proposed scheme allows for fast single-scan multi-slice R 2 * measurement and includes compensation for the effects of macroscopic field inhomogeneity.
机译:R 2 *(= 1 / T 2 *)的准确定量对于神经成像中的许多应用很重要。但是,使用常规的多回波梯度回波成像进行的R 2 *测量受到宏观视野不均匀性的阻碍。已经介绍了几种补偿宏观视野不均匀性的方法,其中大多数方法都需要增加扫描时间。在本文中,提出了一种使用修正的多回波梯度回波序列的R 2 *估计过程,该过程包括双极性补偿梯度,不需要额外的数据采集时间。使用了基于激励轮廓加权信号模型的后处理算法。通过数值模拟和体模测试研究了最佳的补偿梯度量和性能。多层R 2 *图谱来自3T的11位人类志愿者。仿真结果表明,该方法成功地消除了在±8%的误差范围内高达±300μT/ m的宏观场不均匀性的影响。 ROI分析显示R 2 *值分别为30.4±3.0s -1(黑质),25.8±2.7s -1(红核),23.2±1.0s -1(属),20.8±1.2s -1(丘脑),使用所提出的方法,苍白球为34.2±3.4s -1(苍白球),而脾为21.8±1.4s -1(脾),在黑质,红核,膝,壳,壳核和黑质区域,与常规方法相比在统计学上有显着差异。苍白球(p <0.05)。我们提出的方案可以进行快速的单扫描多层R 2 *测量,并包括对宏观场不均匀性影响的补偿。

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