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On-axis acoustic radiation force-based stiffness estimation in phantoms

机译:基于轴上声辐射力的体模刚度估算

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This research quantitatively estimates stiffness by measuring the time-to-peak displacement directly along the acoustic radiation force (ARF) axis in contrast to shear wave elasticity imaging (SWEI) that measures shear wave velocity at lateral locations. We have shown previously in simulation results that an advanced displacement estimator reduces variability in the final stiffness estimate. Here, we tested the on-axis approach in 10 simulations and 5 phantoms. We created a stiffness lookup table of the time-to-peak displacement as a function of depth. We generated the look-up table using a 3D FEM model coupled to Field II simulations. We evaluated both normalized cross-correlation (NCC) and the Bayesian displacement estimator. To evaluate the error of the on-axis method as compared to traditional shear wave methods, we computed a robust lateral time-of-flight-based shear wave speed and converted to a shear modulus for each phantom. The 5 phantoms had a mean shear modulus of 1.90 kPa and standard deviation of 0.18 kPa. The root mean square error between the lateral method and the on-axis method was 0.98 kPa for the Bayesian displacement estimator and 1.14 kPa for NCC on average in the depth of field. These phantom results show that on-axis methods coupled with a Bayesian displacement estimator produce stiffness estimates comparable to laterally offset shear wave methods.
机译:这项研究通过直接测量沿声辐射力(ARF)轴的峰顶位移来定量估计刚度,与之相比,横波弹性成像(SWEI)则只能测量横向位置的横波速度。我们之前在仿真结果中已经表明,先进的位移估算器可减少最终刚度估算中的变化。在这里,我们在10个仿真和5个模型中测试了同轴方法。我们创建了峰顶时间位移随深度变化的刚度查找表。我们使用结合了Field II模拟的3D FEM模型生成了查找表。我们评估了归一化互相关(NCC)和贝叶斯位移估计量。为了评估与传统剪切波方法相比的同轴方法的误差,我们计算了基于横向飞行时间的鲁棒剪切波速度,并将其转换为每个体模的剪切模量。 5个模型的平均剪切模量为1.90 kPa,标准偏差为0.18 kPa。横向方法和同轴方法之间的均方根误差在景深中平均为0.98 kPa(对于贝叶斯位移估计器)和1.14 kPa(对于NCC)。这些幻象结果表明,与贝叶斯位移估计器结合使用的轴向方法可产生与横向偏移剪切波方法相当的刚度估计。

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