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A Review of Model Prediction in Diabetes and of Designing Glucose Regulators Based on Model Predictive Control for the Artificial Pancreas

机译:基于模型预测控制的人工胰腺糖尿病模型预测和葡萄糖调节剂设计研究综述

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The present work presents a comparative assessment of glucose prediction models for diabetic patients using data from sensors monitoring blood glucose concentration as well as data from in silico simulations. The models are based on neural networks and linear and nonlinear mathematical models evaluated for prediction horizons ranging from 5 to 120 min. Furthermore, the implementation of compartment models for simulation of absorption and elimination of insulin, caloric: intake and information about physical activity is examined in combination with neural networks and mathematical models, respectively. This assessment also addresses the recent progress and challenges in designing glucose regulators based on model predictive control used as part of artificial pancreas devices for type 1 diabetic patients. The assessments include 24 papers in total, from 2006 to 2016, in order to investigate progress in blood glucose concentration prediction and in Artificial Pancreas devices for type 1 diabetic patients.
机译:本工作使用来自监测血糖浓度的传感器的数据以及计算机模拟的数据,对糖尿病患者的血糖预测模型进行了比较评估。这些模型基于神经网络以及线性和非线性数学模型,评估了5至120分钟的预测范围。此外,分别结合神经网络和数学模型检查了用于模拟胰岛素的吸收和消除,热量:摄入量和有关身体活动的信息的隔室模型的实现。该评估还解决了基于模型预测控制设计葡萄糖调节剂的最新进展和挑战,该模型被用作1型糖尿病患者的人工胰腺装置的模型预测控制。评估包括2006年至2016年的24篇论文,以调查1型糖尿病患者的血糖浓度预测和人工胰腺装置的研究进展。

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