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2-D Locally Regularized Tissue Strain Estimation From Radio-Frequency Ultrasound Images: Theoretical Developments and Results on Experimental Data

机译:从射频超声图像二维局部正则化组织应变估计:理论发展和实验数据的结果

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摘要

In this paper, a 2-D locally regularized strain estimation method for imaging deformation of soft biological tissues from radio-frequency (RF) ultrasound (US) data is introduced. Contrary to most 2-D techniques that model the compression-induced local displacement as a 2-D shift, our algorithm also considers a local scaling factor in the axial direction. This direction-dependent model of tissue motion and deformation is induced by the highly anisotropic resolution of RF US images. Optimal parameters are computed through the constrained maximization of a similarity criterion defined as the normalized correlation coefficient. Its value at the solution is then used as an indicator of estimation reliability, the probability of correct estimation increasing with the correlation value. In case of correlation loss, the estimation integrates an additional constraint, imposing local continuity within displacement and strain fields. Using local scaling factors and regularization increase the method's robustness with regard to decorrelation noise, resulting in a wider range of precise measurements. Results on simulated US data from a mechanically homogeneous medium subjected to successive uniaxial loadings demonstrate that our method is theoretically able to accurately estimate strains up to 17%. Experimental strain images of phantom and cut specimens of bovine liver clearly show the harder inclusions.
机译:本文介绍了一种二维局部正则应变估计方法,用于根据射频(RF)超声(US)数据对软生物组织的变形进行成像。与大多数将压缩引起的局部位移建模为2-D位移的2-D技术相反,我们的算法还考虑了沿轴向的局部缩放系数。组织运动和变形的这种与方向有关的模型是由RF US图像的高度各向异性分辨率引起的。通过定义为归一化相关系数的相似性准则的约束最大化来计算最佳参数。然后将其在解中的值用作估计可靠性的指标,正确估计的概率随相关值的增加而增加。如果存在相关性损失,则估算会合并一个附加约束,从而在位移场和应变场内施加局部连续性。使用局部比例因子和正则化可以提高方法在去相关噪声方面的鲁棒性,从而可以进行更广泛的精确测量。来自机械均质介质的连续单轴载荷下模拟美国数据的结果表明,我们的方法在理论上能够准确估计高达17%的应变。牛肝体模和切开的标本的实验应变图像清楚地显示了较硬的夹杂物。

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