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Control of Blood Glucose for Type-1 Diabetes by Using Reinforcement Learning with Feedforward Algorithm

机译:前馈算法强化学习控制1型糖尿病血糖

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Background. Type-1 diabetes is a condition caused by the lack of insulin hormone, which leads to an excessive increase in blood glucose level. The glucose kinetics process is difficult to control due to its complex and nonlinear nature and with state variables that are difficult to measure. Methods. This paper proposes a method for automatically calculating the basal and bolus insulin doses for patients with type-1 diabetes using reinforcement learning with feedforward controller. The algorithm is designed to keep the blood glucose stable and directly compensate for the external events such as food intake. Its performance was assessed using simulation on a blood glucose model. The usage of the Kalman filter with the controller was demonstrated to estimate unmeasurable state variables. Results. Comparison simulations between the proposed controller with the optimal reinforcement learning and the proportional-integral-derivative controller show that the proposed methodology has the best performance in regulating the fluctuation of the blood glucose. The proposed controller also improved the blood glucose responses and prevented hypoglycemia condition. Simulation of the control system in different uncertain conditions provided insights on how the inaccuracies of carbohydrate counting and meal-time reporting affect the performance of the control system. Conclusion. The proposed controller is an effective tool for reducing postmeal blood glucose rise and for countering the effects of external known events such as meal intake and maintaining blood glucose at a healthy level under uncertainties.
机译:背景。 1型糖尿病是由胰岛素激素缺乏引起的疾病,会导致血糖水平过度升高。葡萄糖动力学过程由于其复杂和非线性的性质以及难以测量的状态变量而难以控制。方法。本文提出了一种通过前馈控制器的强化学习自动计算1型糖尿病患者基础和推注胰岛素剂量的方法。该算法旨在保持血糖稳定并直接补偿外部事件(例如食物摄入)。使用在血糖模型上的仿真评估其性能。演示了将Kalman滤波器与控制器配合使用以估计无法测量的状态变量。结果。具有最佳强化学习的控制器与比例积分微分控制器的比较仿真表明,该方法在调节血糖波动方面具有最佳性能。拟议的控制器还改善了血糖反应并预防了低血糖症。在不同的不确定条件下对控制系统进行的仿真提供了有关碳水化合物计数和进餐时间报告的不准确性如何影响控制系统性能的见解。结论。提出的控制器是减少餐后血糖升高和抵抗外界已知事件(如进餐)的影响以及在不确定性下将血糖保持在健康水平的有效工具。

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