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Displacement smoothing for the precise MRI-based measurement of strain in soft biological tissues

机译:位移平滑用于基于MRI的精确测量软生物组织中的应变

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Displacement and strain are fundamental quantities that describe the normal and pathological mechanical function of soft biological materials. Non-invasive imaging techniques, including displacement-encoded magnetic resonance imaging (MRI), enable the direct calculation of biomaterial displacements during the application of extrinsic mechanical forces. However, because strain is derived from measured MRI-based displacements, data processing must be accomplished to minimise the propagation and amplification of errors. Here, we evaluate smoothing methods (including averaging filters, splines, finite impulse response filters and wavelets) that enable the calculation of strain in biomaterials from MRI-based displacements for minimal error, defined in terms of bias and precision. Displacement and strain precisions were improved using all smoothing methods studied. Precision generally increased with the number of smoothing iterations (i.e. repeated applications) of a chosen smoothing method. The bias depended on the smoothing method and tended to increase with the number of smoothing iterations. A Gaussian filter characterised complex and heterogeneous strain fields with maximum precision and minimum bias. The results suggest that the optimal choice of smoothing method to compute strain for a given biomaterial or tissue application depends on a careful consideration of trade-offs between the improved precision (with increased data smoothing) and the trending increase in bias.
机译:位移和应变是描述软生物材料正常和病理力学功能的基本量。非侵入性成像技术,包括位移编码磁共振成像(MRI),可以在施加外在机械力的过程中直接计算生物材料的位移。但是,由于应变是从基于MRI的测量位移中得出的,因此必须完成数据处理以最大程度地减少错误的传播和放大。在这里,我们评估了平滑方法(包括平均滤波器,样条曲线,有限冲激响应滤波器和小波),这些方法能够从基于MRI的位移计算生物材料中的应变,从而将误差(由偏差和精度)定义为最小。使用所有研究的平滑方法可以提高位移和应变精度。精度通常随着所选平滑方法的平滑迭代次数(即重复应用)而增加。偏差取决于平滑方法,并且倾向于随着平滑迭代次数的增加而增加。高斯滤波器以最大的精度和最小的偏差来表征复杂且非均质的应变场。结果表明,对于给定的生物材料或组织应用,用于计算应变的平滑方法的最佳选择取决于仔细考虑改进的精度(随着数据平滑的增加)和趋势的增加之间的权衡。

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