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Dynamic Insulin Basal Needs Estimation and Parameters Adjustment in Type 1 Diabetes

机译:动态胰岛素基础需要估计和1型糖尿病的参数调整

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摘要

Technology advances have made possible improvements such as Continuous Glucose Monitors, giving the patient a glucose reading every few minutes, or insulin pumps, allowing more personalized therapies. With the increasing number of available closed-loop systems, new challenges appear regarding algorithms and functionalities. Several of the analysed systems in this paper try to adapt to changes in some patients’ conditions and, in several of these systems, other variables such as basal needs are considered fixed from day to day to simplify the control problem. Therefore, these systems require a correct adjustment of the basal needs profile which becomes crucial to obtain good results. In this paper a novel approach tries to dynamically determine the insulin basal needs of the patient and use this information within a closed-loop algorithm, allowing the system to dynamically adjust in situations of illness, exercise, high-fat-content meals or even partially blocked infusion sites and avoiding the need for setting a basal profile that approximately matches the basal needs of the patient. The insulin sensitivity factor and the glycemic target are also dynamically modified according to the situation of the patient. Basal insulin needs are dynamically determined through linear regression via the decomposition of previously dosed insulin and its effect on the patient’s glycemia. Using the obtained value as basal insulin needs and other mechanisms such as basal needs modification through its trend, ISF and glycemic targets modification and low-glucose-suspend threshold, the safety of the algorithm is improved. The dynamic basal insulin needs determination was successfully included in a closed-loop control algorithm and was simulated on 30 virtual patients (10 adults, 10 adolescent and 10 children) using an open-source python implementation of the FDA-approved (Food and Drug Administration) UVa (University of Virginia)/Padova Simulator. Simulations showed that the proposed system dynamically determines the basal needs and can adapt to a partial blockage of the insulin infusion, obtaining similar results in terms of time in range to the case in which no blockage was simulated. The proposed algorithm can be incorporated to other current closed-loop control algorithms to directly estimate the patient’s basal insulin needs or as a monitoring channel to detect situations in which basal needs may differ from the expected ones.
机译:技术进步使得连续葡萄糖监测器等可能改善,每隔几分钟或胰岛素泵给予患者葡萄糖读数,允许更个性化的疗法。随着可用闭环系统数量越来越多的越来越多,出现了算法和功能的新挑战。本文的几个分析系统试图适应一些患者的病症的变化,并且在这些系统中的几个方面,其他变量,如基础需求,每天都被视为简化控制问题。因此,这些系统需要正确调整基础需求轮廓,这变得至关重要,以获得良好的结果。一种新的方法尝试动态地确定患者的胰岛素基础需求并在闭环算法内使用该信息,使系统能够在疾病,运动​​,高脂肪含量膳食或甚至部分地动态调整。阻止的输液位点并避免需要设定基部轮廓,大致匹配患者的基础需求。根据患者的情况,还可以动态地修改胰岛素敏感性因子和血糖靶。通过先前给药的分解和其对患者糖血症的影响,通过线性回归动态地确定基础胰岛素。使用所获得的值作为基础胰岛素需求和其他机制,例如基础需求通过其趋势,isf和血糖靶标改性和低葡萄糖悬挂阈值,算法的安全性得到改善。动态基底胰岛素需要测定成功包括在闭环控制算法中,并在30名虚拟患者(10名成人,10名青少年和10名儿童)中模拟了FDA批准的开源Python(食品和药物管理局) )UVA(弗吉尼亚大学)/ Padova Simulator。模拟表明,所提出的系统动态地确定基础需求,并且可以适应胰岛素输注的部分堵塞,从而在范围内的时间内得到类似的结果,其中没有模拟堵塞的情况。该算法可以掺入其他电流闭环控制算法,直接估计患者的基础胰岛素需要或作为监测信道来检测基础需求可能与预期的情况不同的情况。

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