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首页> 外文期刊>International journal for numerical methods in biomedical engineering >A genetic algorithm tuned optimal controller for glucose regulation in type 1 diabetic subjects
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A genetic algorithm tuned optimal controller for glucose regulation in type 1 diabetic subjects

机译:遗传算法调整的1型糖尿病患者血糖调节的最优控制器

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摘要

An optimal state feedback controller is designed with the objective of minimizing the elevated glucose levels caused by meal intake in Type 1 diabetic subjects, by the minimal infusion of insulin. The states for the controller based on linear quadratic regulator theory are estimated from noisy data using Kalman filter. The controller designed for a physiological relevant mathematical model is coupled with another model for simulating meal dynamics, which converts meal intake into glucose appearance rate in the plasma. The tuning parameters (weighting matrices) of the controller and the design parameters (noise covariance matrices) of the Kalman filter are optimized using genetic algorithm. The controller based on the combined framework of evolutionary computing and state estimated linear quadratic regulator is found to maintain normoglycemia for meal intakes of varying carbohydrate content. The proposed approach addresses noisy output measurement, modeling error and delay in sensor measurement.
机译:设计最佳状态反馈控制器的目的是通过最小程度地注入胰岛素来最小化1型糖尿病受试者因进餐而引起的血糖水平升高。基于线性二次调节器理论的控制器状态是使用卡尔曼滤波器从噪声数据中估算出来的。为生理相关数学模型设计的控制器与另一个用于模拟膳食动态的模型耦合,该模型将膳食摄入量转换为血浆中的葡萄糖出现率。使用遗传算法优化控制器的调整参数(加权矩阵)和卡尔曼滤波器的设计参数(噪声协方差矩阵)。发现基于进化计算和状态估计的线性二次调节器的组合框架的控制器可为各种碳水化合物含量的膳食摄入维持正常血糖。所提出的方法解决了噪声输出测量,建模误差和传感器测量中的延迟。

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