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收发相位校正的 2D 对比源反转-电特性层析成像。

Transceive phase corrected 2D contrast source inversion-electrical properties tomography.

机构信息

Computational Imaging Group for MRI Diagnostics and Therapy, Centre for Image Sciences UMC Utrecht, Utrecht, The Netherlands.

Department of Biomedical Engineering, Eindhoven University of Technology, Eindhoven, The Netherlands.

出版信息

Magn Reson Med. 2021 May;85(5):2856-2868. doi: 10.1002/mrm.28619. Epub 2020 Dec 6.

Abstract

PURPOSE

To remove the necessity of the tranceive phase assumption for CSI-EPT and show electrical properties maps reconstructed from measured data obtained using a standard 3T birdcage body coil setup.

METHODS

The existing CSI-EPT algorithm is reformulated to use the transceive phase rather than relying on the transceive phase assumption. Furthermore, the radio frequency (RF)-shield is numerically implemented to accurately model the RF fields inside the MRI scanner. We verify that the reformulated two-dimensional (2D) CSI-EPT algorithm can reconstruct electrical properties maps given 2D electromagnetic simulations. Afterward, the algorithm is tested with three-dimensional (3D) FDTD simulations to investigate if the 2D CSI-EPT can retrieve the electrical properties for 3D RF fields. Finally, an MR experiment at 3T with a phantom is performed.

RESULTS

From the results of the 2D simulations, it is seen that CSI-EPT can reconstruct the electrical properties using MRI accessible quantities. For 3D simulations, it is observed that the electrical properties are underestimated, nonetheless, CSI-EPT has a lower standard deviation than the standard Helmholtz based methods. Finally, the first CSI-EPT reconstructions based on measured data are presented showing comparable accuracy and precision to reconstructions based on simulated data, and demonstrating the feasibility of CSI-EPT.

CONCLUSIONS

The CSI-EPT algorithm was rewritten to use MRI accessible quantities. This allows for CSI-EPT to fully exploit the benefits of the higher static magnetic field strengths with a standard quadrature birdcage coil setup.

摘要

目的

去除 CSI-EPT 对发射接收相位假设的需求,并展示使用标准的 3T 鸟笼体线圈设置从测量数据重建的电特性图。

方法

重新制定现有的 CSI-EPT 算法,使用发射接收相位,而不是依赖发射接收相位假设。此外,数值实现射频 (RF) 屏蔽,以准确模拟 MRI 扫描仪内的 RF 场。我们验证了重新制定的二维 (2D) CSI-EPT 算法可以根据 2D 电磁模拟重建电特性图。之后,通过三维 (3D) FDTD 模拟测试该算法,以研究 2D CSI-EPT 是否可以为 3D RF 场检索电特性。最后,在 3T 上进行了带有模型的 MR 实验。

结果

从 2D 模拟的结果中可以看出,CSI-EPT 可以使用 MRI 可获得的量来重建电特性。对于 3D 模拟,观察到电特性被低估,但 CSI-EPT 的标准偏差低于标准的基于亥姆霍兹的方法。最后,展示了基于测量数据的第一个 CSI-EPT 重建,与基于模拟数据的重建相比,其准确性和精度相当,证明了 CSI-EPT 的可行性。

结论

重写了 CSI-EPT 算法以使用 MRI 可获得的量。这使得 CSI-EPT 可以充分利用更高的静态磁场强度的优势,而无需使用标准的正交鸟笼线圈设置。

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