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Monitoring and fault detection of continuous glucose sensor measurements

机译:连续葡萄糖传感器测量的监视和故障检测

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Faults in subcutaneous glucose concentration readings can cause the computation of insulin infusion rates that can lead to hypoglycemia or hyperglycemia in artificial pancreas control systems for patients with type 1 diabetes (T1D). In this paper, multivariable statistical monitoring methods are used for detection of faults in glucose concentration values reported by a glucose sensor. Multiway principal component analysis is used to develop a model that describes the expected variation in glucose readings under normal conditions. Various meal scenarios are defined to generate different data-sets using the UVa/Padova metabolic simulator. Dynamic time warping is used for synchronization of different scenarios. Different faults such as step, random, drift and exponential changes are tested. The results show that the proposed method is able to detect various types of faults with high accuracy. Detailed analysis of sensitivity, false detection ratio and detection time for different fault types is also presented. The proposed fault detection algorithm can decrease the effects of faults on insulin infusion rates and reduce the potential for hypo- or hyperglycemia for patients with T1D.
机译:皮下葡萄糖浓度读数的错误可能会导致胰岛素输注速率的计算,从而可能导致1型糖尿病(T1D)患者的人工胰腺控制系统出现低血糖或高血糖。在本文中,多变量统计监测方法用于检测由葡萄糖传感器报告的葡萄糖浓度值中的故障。多路主成分分析用于建立一个模型,该模型描述正常条件下葡萄糖读数的预期变化。使用UVa / Padova代谢模拟器定义了各种进餐方案,以生成不同的数据集。动态时间规整用于不同场景的同步。测试了诸如阶跃,随机,漂移和指数变化之类的不同故障。结果表明,该方法能够准确地检测出各种类型的故障。还给出了针对不同故障类型的灵敏度,错误检测率和检测时间的详细分析。所提出的故障检测算法可以减少故障对胰岛素输注速率的影响,并降低T1D患者低血糖或高血糖的可能性。

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