Objective: Global Maxwell Tomography (GMT) is a recently introduced volumetric technique fo'/> Magnetic-Resonance-Based Electrical Property Mapping Using Global Maxwell Tomography With an 8-Channel Head Coil at 7 Tesla: A Simulation Study
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Magnetic-Resonance-Based Electrical Property Mapping Using Global Maxwell Tomography With an 8-Channel Head Coil at 7 Tesla: A Simulation Study

机译:基于磁共振的电特性映射,使用全局麦克风断层扫描与7特斯拉的8通道头部线圈:仿真研究

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Objective: Global Maxwell Tomography (GMT) is a recently introduced volumetric technique for noninvasive estimation of electrical properties (EP) from magnetic resonance measurements. Previous work evaluated GMT using ideal radiofrequency (RF) excitations. The aim of this simulation study was to assess GMT performance with a realistic RF coil. Methods: We designed a transmit-receive RF coil with 8 decoupled channels for 7T head imaging. We calculated the RF transmit field ( $B_1^+$ ) inside heterogeneous head models for different RF shimming approaches, and used them as input for GMT to reconstruct EP for all voxels. Results: Coil tuning/decoupling remained relatively stable when the coil was loaded with different head models. Mean error in EP estimation changed from $ext{7.5}{%}$ to $ext{9.5}{%}$ and from $ext{4.8}{%}$ to $ext{7.2}%$ for relative permittivity and conductivity, respectively, when changing head model without re-tuning the coil. Results slightly improved when an SVD-based RF shimming algorithm was applied, in place of excitation with one coil at a time. Despite errors in EP, RF transmit field ( $B_1^+$ ) and absorbed power could be predicted with less than $ext{0.5}{%}$ error over the entire head. GMT could accurately detect a numerically inserted tumor. Conclusion: This work demonstrates that GMT can reliably reconstruct EP in realistic simulated scenarios using a tailored 8-channel RF coil design at 7T. Future work will focus on construction of the coil and optimization of GMT's robustness to noise, to enable in-vivo GMT experiments. Significance: GMT could provide accurate estimations of tissue EP, which could be used as biomarkers and could enable patient-specific estimation of RF power deposition, which is an unsolved problem for ultra-high-field magnetic resonance imaging.
机译:<斜体XMLNS:mml =“http://www.w3.org/1998/math/mathml”xmlns:xlink =“http://www.w3.org/1999/xlink”>目标:全局Maxwell断层扫描(GMT)是最近引入了来自磁共振测量的非识别电学(EP)的体积技术。以前的工作使用理想的射频(RF)激励评估GMT。该模拟研究的目的是使用现实的RF线圈评估GMT性能。 方法:我们设计了具有8个去耦通道的发射接收RF线圈,用于7T头成像。我们计算了RF传输字段(<内联公式XMLNS:MML =“http://www.w3.org/1998/math/mathml”xmlns:xlink =“http://www.w3.org/1999/xlink “> $ b_1 ^ + $ 用于不同的射频匀场方法的异构头部模型,并用它们作为GMT的输入重建EP对于所有体素。 结果:线圈当线圈装有不同的头部模型时,调谐/去耦保持相对稳定。 EP估计中的平均误差从<内联公式XMLNS更改:MML =“http://www.w3.org/1998/math/mathml”xmlns:xlink =“http://www.w3.org/1999/xlink “> $ text {7.5} {%} $ 到<内联公式xmlns:mml =”http:// www .w3.org / 1998 / math / mathml“xmlns:xlink =”http://www.w3.org/1999/xlink“> $ text {9.5} {% $ 和<内联公式xmlns:mml =“http://www.w3.org/1998/math/mathml”xmlns:xlink =“http:// www.w3.org/1999/xlink">< tex-math notation =“latex”> $ text {4.8} {%} $ 到<内联公式xmlns :mml =“http://www.w3.org/1998/math/mathml”xmlns:xlink =“http://www.w3.org/1999/xlink”> $ text {7.2} %$ 对于相对介电常数和电导率,在改变头模型时不重新​​调整线圈。当施加基于SVD的RF闪烁算法时,施加稍微改善的结果,一次用一个线圈激发。尽管EP中的错误,RF传输字段(<内联公式XMLNS:MML =“http://www.w3.org/1998/math/mathml”xmlns:xlink =“http://www.w3.org/1999 / xlink“> $ b_1 ^ + $ )和吸收电源可以少于<内联公式xmlns:mml =” http://www.w3.org/1998/math/mathml“xmlns:xlink =”http://www.w3.org/1999/xlink“> $ text { 0.5} {%} $ 整个头部的错误。 GMT可以准确地检测数值插入的肿瘤。 <斜体XMLNS:mml =“http://www.w3.org/1998/math/mathml”xmlns:xlink =“http://www.w3.org/1999/xlink”>结论:这工作表明,GMT可以使用7T定制的8通道RF线圈设计在现实模拟场景中可靠地重建EP。未来的工作将专注于线圈的建设和GMT的稳健性对噪音的优化,以实现体内GMT实验。 意义: GMT可以提供对组织EP的准确估计,其可以用作生物标志物,并且可以使RF功率沉积的患者特异性估计能够,这是用于超高场磁共振成像的未解决问题。

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