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Calculation of shear stiffness in noise dominated magnetic resonance elastography data based on principal frequency estimation.

机译:基于主频率估计的噪声主导的磁共振弹性成像数据中的剪切刚度计算。

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摘要

Magnetic resonance elastography (MRE) is a non-invasive phase-contrast-based method for quantifying the shear stiffness of biological tissues. Synchronous application of a shear wave source and motion encoding gradient waveforms within the MRE pulse sequence enable visualization of the propagating shear wave throughout the medium under investigation. Encoded shear wave-induced displacements are then processed to calculate the local shear stiffness of each voxel. An important consideration in local shear stiffness estimates is that the algorithms employed typically calculate shear stiffness using relatively high signal-to-noise ratio (SNR) MRE images and have difficulties at an extremely low SNR. A new method of estimating shear stiffness based on the principal spatial frequency of the shear wave displacement map is presented. Finite element simulations were performed to assess the relative insensitivity of this approach to decreases in SNR. Additionally, ex vivo experiments were conducted on normal rat lungs to assess the robustness of this approach in low SNR biological tissue. Simulation and experimental results indicate that calculation of shear stiffness by the principal frequency method is less sensitive to extremely low SNR than previously reported MRE inversion methods but at the expense of loss of spatial information within the region of interest from which the principal frequency estimate is derived.
机译:磁共振弹性成像(MRE)是一种基于无创相衬的方法,用于量化生物组织的剪切刚度。在MRE脉冲序列内同步应用剪切波源和运动编码梯度波形,可以在整个被研究介质中可视化传播的剪切波。然后对编码的剪切波引起的位移进行处理,以计算每个体素的局部剪切刚度。局部剪切刚度估算中的一个重要考虑因素是,所采用的算法通常使用相对较高的信噪比(SNR)MRE图像来计算剪切刚度,并且在极低的SNR时会遇到困难。提出了一种基于剪切波位移图主空间频率的剪切刚度估算方法。进行了有限元模拟,以评估这种方法对降低信噪比的相对不敏感性。另外,在正常大鼠肺上进行了离体实验,以评估这种方法在低SNR生物组织中的鲁棒性。仿真和实验结果表明,与以前报道的MRE反演方法相比,通过主频率方法计算的剪切刚度对极低的SNR不太敏感,但以丢失主频率估计所源自的感兴趣区域内的空间信息为代价。

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