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首页> 外文期刊>Chemical Engineering Research & Design: Transactions of the Institution of Chemical Engineers >Comparison of control algorithms for the blood glucose concentration in a virtual patient with an artificial pancreas
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Comparison of control algorithms for the blood glucose concentration in a virtual patient with an artificial pancreas

机译:虚拟胰腺人工患者血糖浓度控制算法的比较

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摘要

To obtain the most suitable control algorithm for a wearable artificial pancreas, different control algorithms were compared and tested using a Hovorka model. Model predictive control (MPC), linear and nonlinear model forms, proportional integral derivative control (PID), neural-hetwork-based model predictive control (NN-MPC), nonlinear autoregressive moving average (NARMA-L2) and sequential quadratic programming (SQP) were evaluated using the Hovorka model. Due to the fact that modeling of biomedical processes are very complex, to present the most effective control algorithm, various control strategies were needed to application. In the control algorithms, set point tracking and disturbance rejection were performed. With respect to the rise times of the control algorithms, SQP with optimal control had the shortest time, and NARMA-L2 had the longest time. Because the control algorithm connects the glucose meter and the insulin pump in an artificial pancreas, the rise time is the most important parameter. We propose that optimal control with SQP is the most suitable control algorithm to connect the glucose meter and the insulin pump.
机译:为了获得最合适的可穿戴人工胰腺控制算法,比较了不同的控制算法并使用Hovorka模型进行了测试。模型预测控制(MPC),线性和非线性模型形式,比例积分微分控制(PID),基于神经网络的模型预测控制(NN-MPC),非线性自回归移动平均值(NARMA-L2)和顺序二次规划(SQP) )使用Hovorka模型进行了评估。由于生物医学过程的建模非常复杂的事实,要提出最有效的控制算法,需要采用各种控制策略。在控制算法中,执行了设定点跟踪和干扰抑制。就控制算法的上升时间而言,具有最优控制的SQP时间最短,而NARMA-L2具有最长时间。因为控制算法将血糖仪和胰岛素泵连接在人造胰腺中,所以上升时间是最重要的参数。我们建议使用SQP进行最优控制是连接血糖仪和胰岛素泵的最合适的控制算法。

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