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Robust estimation of time-of-flight shear wave speed using a Radon sum transformation

机译:使用Radon sum变换对飞行时间剪切波速度进行稳健估计

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Time-of-flight methods allow quantitative measurement of shear wave speed (SWS) from ultrasonically tracked displacements following impulsive excitation in tissue. However, application of these methods to in vivo data is challenging due to the presence of gross outlier data resulting from sources such as physiological motion or spatial in homogeneities. This paper describes a new method for estimating SWS by considering a solution space of trajectories and evaluating each trajectory using a metric that characterizes wave motion along the entire trajectory. The metric used here is found by summing displacement data along the trajectory as in the calculation of projection data in the Radon transformation. The algorithm is evaluated using data acquired in calibrated phantoms and in vivo human liver. Results are compared to SWS estimates using a random sample consensus (RANSAC) algorithm described by Wang, et al. Good agreement is found between the Radon sum and RANSAC SWS estimates with a correlation coefficient of greater than 0.99 for phantom data and 0.91 for in vivo liver data. The Radon sum transformation is suitable for use in situations requiring realtime feedback and is comparably robust to the RANSAC algorithm with respect to outlier data.
机译:飞行时间方法可以根据组织中的脉冲激励,根据超声跟踪的位移来定量测量剪切波速度(SWS)。然而,由于存在诸如生理运动或同质性空间之类的来源而导致的总体异常数据的存在,将这些方法应用于体内数据具有挑战性。本文介绍了一种通过考虑轨迹的解空间并使用表征整个轨迹上的波浪运动的度量来评估每个轨迹来估算SWS的新方法。如Radon变换中的投影数据计算一样,此处使用的度量是通过将沿轨迹的位移数据相加得出的。使用在校准的体模和体内人肝中获得的数据对算法进行评估。使用Wang等人描述的随机样本共识(RANSAC)算法将结果与SWS估计值进行比较。在Radon总和RANSAC SWS估计之间找到了很好的一致性,幻像数据的相关系数大于0.99,体内肝脏数据的相关系数大于0.91。 Radon sum转换适用于需要实时反馈的情况,相对于离群数据,它相对于RANSAC算法具有较强的鲁棒性。

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