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Parameter Estimation in a Rule-Based Fiber Orientation Model from End Systolic Strains Using the Reduced Order Unscented Kalman Filter

机译:使用缩小顺序无创的卡尔曼滤波器从最终收缩株的规则基础光纤定向模型中的参数估计

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Fiber orientation is a major factor in the determination of end-systolic strains within models of cardiac mechanics. Unfortunately, direct patient-specific acquisition of fiber orientation is not readily available nowadays in the clinic. As an alternative, we propose to use the Reduced Order Unscented Kalman Filter to estimate rule-based fiber orientation parameters from end-systolic wall strains that can be obtained using more traditional imaging methodologies. We address the estimation of fiber orientation in the physiological left ventricle, where end-systolic strains were generated in-silico using a 12-parameter rule-based fiber model. The estimation process focused on the determination of the three most influential parameters of an imperfect 5-parameter rule-based fiber model. Our results show that these three fiber parameters can be estimated within an average deviation of 6° from a combination of three end-systolic strains even when the initial guess for each estimated parameter was set 10° away from the ground truth value.
机译:纤维取向是在心脏力学模型中测定末端收缩菌株的一个主要因素。不幸的是,目前在诊所现在不容易获得直接患者特异性的纤维取向。作为替代方案,我们建议使用减少的订单无需的卡尔曼滤波器来估计可以使用更传统的成像方法获得的最终收缩壁应变来估计基于规则的纤维取向参数。我们解决了生理左心室中纤维取向的估计,其中使用基于12参数规则的光纤模型在硅中产生了末端收缩菌株。估计过程集中在确定不完全5参数规则的光纤模型的三个最具影响力的参数。我们的结果表明,即使当每个估计参数的初始猜测远离地面真值值设置10°,也可以从三个结束 - 收缩菌株的组合估计这三种光纤参数。

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