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A Nonlinear Model Predictive Control Strategy for Glucose Control in People with Type 1 Diabetes

机译:1型糖尿病人类葡萄糖对照的非线性模型预测控制策略

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In this paper, we evaluate the closed-loop performance of a control algorithm for the treatment of type 1 diabetes (T1D) identified from prior continuous glucose monitor (CGM) data. The control algorithm is based on nonlinear model predictive control (NMPC). At each iteration, we solve an optimal control problem (OCP) using a sequential quadratic programming algorithm with multiple shooting and sensitivity computation. The control algorithm uses a physiological model of T1D to predict future blood glucose (BG) concentrations. The T1D physiological model takes into account the dynamics between subcutaneously administered insulin and blood glucose, the contribution of meal absorption and the lag and noise of CGM measurements. The model parameters have been identified using prior data. Numerical simulations on 10 patients show that the NMPC algorithm is safe and is able to optimize the insulin delivery in patients with T1D.
机译:在本文中,我们评估了从先前连续葡萄糖监测器(CGM)数据鉴定的1型糖尿病(T1D)的控制算法的闭环性能。控制算法基于非线性模型预测控制(NMPC)。在每次迭代时,我们使用具有多个拍摄和灵敏度计算的顺序二次编程算法来解决最佳控制问题(OCP)。控制算法使用T1D的生理模型来预测未来的血糖(BG)浓度。 T1D生理模型考虑了皮下给药胰岛素和血糖之间的动态,膳食吸收的贡献和CGM测量的滞后和噪声。已经使用先前数据识别了模型参数。 10名患者的数值模拟表明NMPC算法是安全的,能够优化T1D患者胰岛素递送。

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