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An Ensemble Nonlinear Model Predictive Control Algorithm in an Artificial Pancreas for People with Type 1 Diabetes

机译:1型糖尿病人工胰腺中的集合非线性模型预测控制算法

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This paper presents a novel ensemble nonlinear model predictive control (NMPC) algorithm for glucose regulation in type 1 diabetes. In this approach, we consider a number of scenarios describing different uncertainties, for instance meals or metabolic variations. We simulate a population of 9 patients with different physiological parameters and a time-varying insulin sensitivity using the Medtronic Virtual Patient (MVP) model. We augment the MVP model with stochastic diffusion terms, time-varying insulin sensitivity and noise-corrupted CGM measurements. We consider meal challenges where the uncertainty in meal size is ± 50%. Numerical results show that the ensemble NMPC reduces the risk of hypoglycemia compared to standard NMPC in the case where the meal size is overestimated or correctly estimated at the expense of a slightly increased number of hyperglycemia. Therefore, ensemble MPC-based algorithms can improve the safety of the AP compared to the classical MPC-based algorithms.
机译:本文提出了一种新型集合非线性模型预测控制(NMPC)糖尿病型葡萄糖调控算法。在这种方法中,我们考虑一些描述不同不确定性的场景,例如膳食或代谢变化。我们使用Medtronic虚拟患者(MVP)模型来模拟9名不同生理参数的患者和时变胰岛素敏感性。我们使用随机扩散术语增强了MVP模型,时变胰岛素敏感性和噪声损坏的CGM测量。我们考虑膳食挑战,其中膳食尺寸的不确定性为±50%。数值结果表明,与标准NMPC相比,该组合NMPC降低了膳食尺寸超高或正确估计的高血糖血症数量略微增加的情况下对低血糖的风险。因此,与基于经典MPC的算法相比,基于基于MPC的算法可以提高AP的安全性。

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