首页> 外文会议>ASME annual dynamic systems and control conference >A NONLINEAR DATA-DRIVEN MODEL OF GLUCOSE DYNAMICS ACCOUNTING FOR PHYSICAL ACTIVITY FOR TYPE 1 DIABETES: AN IN SILICO STUDY
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A NONLINEAR DATA-DRIVEN MODEL OF GLUCOSE DYNAMICS ACCOUNTING FOR PHYSICAL ACTIVITY FOR TYPE 1 DIABETES: AN IN SILICO STUDY

机译:1型糖尿病身体活动的葡萄糖数据动力学非线性数据驱动模型:硅研究

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Physical activity is an important physiological information which should be taken into account by artificial pancreas to achieve optimal control of blood glucose in Type 1 Diabetes patients. An accurate glucose dynamic model with physical activity as an additional input is highly desirable for the next generation artificial pancreas. In this paper, we present a nonlinear data-driven model that captures both the insulin-independent and -dependent effect of physical activity, especially the prolonged effect of physical activity on insulin sensitivity that can last 24-48 hours post exercise. The model was identified and validated using data sets generated by a physiological glucose-exercise model under a clinical training protocol. Compared to modeling the effect of physical activity as a linear additive term only in a glucose dynamic equation, the proposed nonlinear model showed significant improvement of prediction accuracy in all three metrics, particularly in large prediction horizons (P < 0.05). Further investigation in time-series data indicates that the improvement mainly resulted from the better prediction of glucose around the first meal time after exercise (6 to 8 hours after the meal was taken).
机译:体力活动是重要的生理信息,人工胰腺应考虑这些信息,以实现对1型糖尿病患者的最佳血糖控制。对于下一代人工胰腺,非常需要具有身体活动作为附加输入的精确葡萄糖动力学模型。在本文中,我们提出了一个非线性的数据驱动模型,该模型捕获了不依赖胰岛素​​和不依赖体育活动的影响,尤其是运动对胰岛素敏感性的长期影响,这种影响可以在运动后持续24-48小时。在临床训练方案下,使用生理葡萄糖运动模型生成的数据集对模型进行识别和验证。与仅在葡萄糖动力学方程中将身体活动的影响作为线性累加项进行建模相比,所提出的非线性模型在所有三个指标中均显示出显着改善的预测准确性,尤其是在较大的预测范围内(P <0.05)。对时序数据的进一步研究表明,这种改善主要是由于运动后第一餐时间(进餐后6至8小时)对葡萄糖的更好预测所致。

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