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Plasma Insulin Cognizant Predictive Control for Artificial Pancreas

机译:人工胰腺的血浆胰岛素认知预测控制

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摘要

In the present work, an adaptive model predictive control (MPC) algorithm is designed to effectively compute the optimal exogenous insulin delivery for artificial pancreas systems. The proposed MPC is designed using adaptive models that are recursively identified through subspace-based techniques to characterize the transient dynamics of glycemic measurements without requiring any information on the time and amount of carbohydrate consumption. A dynamic safety constraint derived from the estimation of plasma insulin concentration (PIC) is incorporated in the proposed MPC algorithm for the efficacy and reliability of the artificial pancreas system. The MPC algorithm, cognizant of the PIC, computes the optimal control solution to regulate blood glucose concentration while mitigating aggressive control actions (excessive insulin doses) when sufficient insulin is present in the bloodstream, thereby minimizing the risk of hypoglycemia. The efficiency of the proposed MPC algorithm is demonstrated using simulation studies.
机译:在当前的工作中,设计了一种自适应模型预测控制(MPC)算法,以有效地计算出人工胰腺系统的最佳外源胰岛素输送量。提出的MPC是使用自适应模型设计的,该模型通过基于子空间的技术递归识别,以表征血糖测量的瞬态动态,而无需任何有关碳水化合物消耗时间和消耗量的信息。从血浆胰岛素浓度(PIC)的估计中得出的动态安全约束被纳入提出的MPC算法中,以提高人造胰腺系统的功效和可靠性。 MPC算法(PIC的代表)计算出最佳的控制解决方案,以调节血糖浓度,同时在血液中存在足够的胰岛素时减轻激进的控制动作(过多的胰岛素剂量),从而将低血糖的风险降到最低。仿真研究证明了所提出的MPC算法的效率。

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