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Parameter Identification Methods in a Model of the Cardiovascular System ?

机译:心血管系统模型中的参数识别方法

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To be clinically relevant, mathematical models have to be patient-specific, meaning that their parameters have to be identified from patient data. To achieve real time monitoring, it is important to select the best parameter identification method, in terms of speed, efficiency and reliability. This work presents a comparison of seven parameter identification methods applied to a lumped-parameter cardiovascular system model. The seven methods are tested using in silico and experimental reference data. To do so, precise formulae for initial parameter values first had to be developed. The test results indicate that the trust-region reflective method seems to be the best method for the present model. This method (and the proportional method) are able to perform parameter identification in two to three minutes, and will thus benefit cardiac and vascular monitoring applications.
机译:为了与临床相关,数学模型必须针对患者,这意味着必须从患者数据中识别出它们的参数。为了实现实时监控,就速度,效率和可靠性而言,选择最佳的参数识别方法很重要。这项工作对应用于集总参数心血管系统模型的七个参数识别方法进行了比较。使用计算机模拟和实验参考数据测试了这七种方法。为此,必须首先开发用于初始参数值的精确公式。测试结果表明,信任区域反射方法似乎是当前模型的最佳方法。这种方法(和比例方法)能够在两到三分钟内执行参数识别,因此将有益于心脏和血管监测应用。

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