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An improved parameter estimation and comparison for soft tissue constitutive models containing an exponential function

机译:包含指数函数的软组织本构模型的改进参数估计和比较

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摘要

Motivated by the well-known result that stiffness of soft tissue is proportional to the stress, many of the constitutive laws for soft tissues contain an exponential function. In this work, we analyze properties of the exponential function and how it affects the estimation and comparison of elastic parameters for soft tissues. In particular, we find that as a consequence of the exponential function there are lines of high covariance in the elastic parameter space. As a result, one can have widely varying mechanical parameters defining the tissue stiffness but similar effective stress–strain responses. Drawing from elementary algebra, we propose simple changes in the norm and the parameter space, which significantly improve the convergence of parameter estimation and robustness in the presence of noise. More importantly, we demonstrate that these changes improve the conditioning of the problem and provide a more robust solution in the case of heterogeneous material by reducing the chances of getting trapped in a local minima. Based upon the new insight, we also propose a transformed parameter space which will allow for rational parameter comparison and avoid misleading conclusions regarding soft tissue mechanics.
机译:基于众所周知的结果,即软组织的刚度与应力成正比,许多软组织的本构律都包含指数函数。在这项工作中,我们分析了指数函数的性质以及它如何影响软组织的弹性参数的估计和比较。特别地,我们发现,由于指数函数,弹性参数空间中存在高协方差的线。结果,可以具有广泛变化的机械参数来定义组织的刚度,但具有相似的有效应力-应变响应。利用基本代数,我们提出了范数和参数空间的简单更改,这些更改显着提高了存在噪声时参数估计和鲁棒性的收敛性。更重要的是,我们证明了这些更改改善了问题的状况,并通过减少陷入局部极小值的机会,为异质材料提供了更可靠的解决方案。基于新的见解,我们还提出了一种变换后的参数空间,该参数空间将允许进行合理的参数比较,并避免有关软组织力学的错误结论。

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