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A learning automata-based blood glucose regulation mechanism in type 2 diabetes

机译:一种基于自动机的学习型2型糖尿病的血糖调节机制

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This paper proposes a learning automata-based mechanism for blood glucose regulation in type 2 diabetics. The proposed mechanism takes into account the past history of the blood glucose level to determine the correct dosage of the insulin. This method uses the learning automata theory to predict the required dosage of insulin and records the patient history in parameters of a Gaussian probability distribution function. The parameters of the distribution function are updated based on the difference between the actual glucose level regulated by the learning automata and the normal range in such a way that the gap between the actual glucose level and the normal one is minimized. As the proposed algorithm proceeds, it can be seen that it converges to the optimal insulin dosage that keeps the glucose level in normal range for a long time. Convergence of the proposed algorithm to the optimal insulin dosage is theoretically proven. A clinical study is conducted to show the performance of the proposed insulin therapy system for regulation of the blood glucose level of type 2 diabetics.
机译:本文提出了一种基于自动机学习的2型糖尿病患者血糖调节机制。所提出的机制考虑了血糖水平的过去史,以确定胰岛素的正确剂量。该方法使用学习自动机理论来预测所需的胰岛素剂量,并以高斯概率分布函数的参数记录患者的病史。基于由学习自动机调节的实际葡萄糖水平与正常范围之间的差异,更新分配函数的参数,以使实际葡萄糖水平与正常葡萄糖之间的差距最小。随着提出的算法的进行,可以看出它收敛于最佳的胰岛素剂量,该剂量可将葡萄糖水平长时间保持在正常范围内。理论上证明了所提出算法对最佳胰岛素剂量的收敛性。进行了一项临床研究,以显示所提出的胰岛素治疗系统对2型糖尿病患者血糖水平的调节作用。

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