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A NONLINEAR DATA-DRIVEN APPROACH TO TYPE I DIABETIC PATIENT MODELING

机译:I型糖尿病患者建模的非线性数据驱动方法

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Glucose-insulin interactions in the Type I diabetic patient are approximated in an input-output sense using a third-order Volterra series model. Due to the large number of unique coefficients present in a third-order model, efficient parameter identification methods are developed. Several pruned model structures were examined, and maximum dynamic accuracy was obtained when a linear plus nonlinear diagonal model was employed. Increased steady state accuracy could be obtained by including semi-diagonal and off-diagonal coefficients; however, this increase in static accuracy came at a cost of decreased dynamic accuracy. Furthermore, calculation of semi-diagonal and off-diagonal coefficients requires data acquisition times infeasible for clinical applications. Hence, the linear plus nonlinear diagonal Volterra series model is a well-suited structure for approximating Type I diabetic patient glucose-insulin dynamics using input-output methods.
机译:I型糖尿病患者中的葡萄糖 - 胰岛素相互作用在使用三阶Volterra系列模型中近似于输入输出意义。由于三阶模型中存在的大量唯一系数,开发了有效的参数识别方法。检查了几种修剪式模型结构,当采用线性加非线性对角线模型时,获得了最大动态精度。通过包括半对角线和非对角线系数可以获得增加的稳态精度;然而,这种静态精度的增加以动态精度降低的成本。此外,半对角线和非对角线系数的计算需要对临床应用的数据获取时间不可行。因此,线性加非线性对角线Volterra系列模型是使用输入输出方法近似I型糖尿病患者葡萄糖 - 胰岛素动态的良好结构。

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