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Theoretical Investigation of Random Noise-Limited Signal-to-Noise Ratio in MR-Based Electrical Properties Tomography

机译:基于MR的电学层析成像中随机限制噪声的信噪比的理论研究

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摘要

In magnetic resonance imaging-based electrical properties tomography (MREPT), tissue electrical properties (EPs) are derived from the spatial variation of the transmit RF field . Here we derive theoretically the relationship between the signal-to-noise ratio (SNR) of the electrical properties obtained by MREPT and the SNR of the input data, under the assumption that the latter is much greater than unity, and the noise in at different voxels is statistically independent. It is shown that for a given data, the SNR of both electrical conductivity and relative permittivity is proportional to the square of the linear dimension of the region of interest (ROI) over which the EPs are determined, and to the square root of the number of voxels in the ROI. The relationship also shows how the SNR varies with the main magnetic field strength. The predicted SNR is verified through numerical simulations on a cylindrical phantom with an analytically calculated map, and is found to provide explanation of certain aspects of previous experimental results in the literature. Our SNR formula can be used to estimate minimum input data SNR and ROI size required to obtain tissue EP maps of desired quality.
机译:在基于磁共振成像的电特性层析成像(MREPT)中,组织电特性(EPs)是从发射RF场的空间变化得出的。在这里我们从理论上推导了MREPT获得的电性能的信噪比(SNR)与输入数据的SNR之间的关系,假设后者要远大于1,并且噪声在体素在统计上是独立的。结果表明,对于给定的数据,电导率和相对介电常数的SNR与确定EP的目标区域(ROI)的线性尺寸的平方成正比,与该值的平方根成正比ROI中的体素。该关系还示出了SNR如何随着主磁场强度而变化。预测的SNR通过具有解析计算图的圆柱体模型上的数值模拟进行了验证,并且可以为文献中先前实验结果的某些方面提供解释。我们的SNR公式可用于估计获得所需质量的组织EP图所需的最小输入数据SNR和ROI大小。

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